WM9713 WOLFSON | Alldatasheet
Document overview
- Manufacturer or author: Provided By ALLDATASHEET.COM(FREE DATASHEET DOWNLOAD SITE)
- PDF pages: 111
Technical content
1 WM9713L
AC’97 Audio + Touchpanel CODEC WOLFSON MICROELECTRONICS plc www.wolfsonmicro.com Preliminary Technical Data, March 2004, Rev 2.2 Copyright 2004 Wolfson Microelectronics plc
DESCRIPTION
The WM9713L is a highly integrated input/output device designed for mobile computing and communications. The chip is architected for dual CODEC operation, supporting Hi-Fi stereo Codec functions via the AC link interface, and additionally supporting voice Codec functions via a PCM type Synchronous Serial Port ( SSP). A third Aux DAC is provided which may be used to support generation of supervisory tones, or ring-tones etc. at different sample rates to the main codec. The device can connect directly to a 4-wire or 5-wire touch- panel, mono or stereo microphones, stereo headphones and a stereo speaker, reducing total component count in the system. Cap-less connections to the headphones, speakers, and earpiece may be used, saving cost and board area. Additionally, multiple analog input and output pins are provided for seamless integration with analog connected wireless communication devices. All device functions are accessed and controlled through a single AC-Link interface compliant with the AC’97 standard. The 24.576 MHz masterclock can be input directly or generated internally from a 13MHz (or other frequency) clock by an onboard PLL. The PLL supports a wide range of input clock from 2.048Mhz to 78.6Mhz. The WM9713L operates at supply voltages from 1.8 to 3.6 Volts. Each section of the chip can be powered down under software control to save power. The device is available in a small leadless 7x7mm QFN package, ideal for use in hand- held portable systems.
FEATURES
- AC’97 Rev 2.2 compatible stereo codec - DAC SNR 94dB, THD –85dB - ADC SNR 87dB, THD –86dB - Variable Rate Audio, supports all WinCE sample rates - Tone Control, Bass Boost and 3D Enhancement
- On-chip 45mW headphone driver
- On-chip 400mW mono or stereo speaker drivers
- Stereo, mono or differential microphone input - Automatic Level Control (ALC) - Mic insert and mic button press detection
- Auxiliary mono DAC (ring tone or DC level generation)
- Seamless interface to wireless chipset
- Resistive touchpanel interface - Supports 4-wire and 5-wire panels - 12-bit resolution, INL ±2 LSBs (<0.5 pixels) - X, Y and touch-pressure (Z) measurement - Pen-down detection supported in Sleep Mode
- Additional PCM/I 2S interface to support voice CODEC
- PLL derived audio clocks.
- Supports input clock ranging from 2.048Mhz to 78.6Mhz
- 1.8V to 3.6V supplies (digital down to 1.62V, speaker up to 4.2V)
- 7x7mm 48-pin QFN package
APPLICATIONS
- Personal Digital Assistants (PDA) with or without phone
- Smartphones
- Handheld and Tablet Computers BLOCK DIAGRAM
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 TABLE OF CONTENTS
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 PIN CONFIGURATION
ORDERING INFORMATION
RANGE PACKAGE MOISTURE SENSITIVITY LEVEL PEAK SOLDERING TEMPERATURE WM9713LGEFL/V -25 to +85 oC 48-pin QFN (lead free) MSL3 260 oC WM9713LGEFL/RV -25 to +85 oC 48-pin QFN (lead free, tape and reel) MSL3 260 oC Note: Reel quantity = 2,200
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 PIN DESCRIPTION PIN NAME TYPE DESCRIPTION
1 DBVDD Supply Digital I/O Buffer Supply
2 MCLKA Digital Input Master Clock A Input
3 MCLKB / GPIO6 / (ADA / MASK) Digital In/Out Master Clock B Input / GPIO6 / (ADA output / MASK input)
4 DGND1 Supply Digital Ground (return path for both DCVDD and DBVDD)
5 SDATAOUT Digital Input Serial Data Output from Controller / Input to WM9713L
6 BITCLK Digital Output Serial Interface Clock Output to Controller
7 DGND2 Supply Digital Ground (return path for both DCVDD and DBVDD)
8 SDATAIN Digital Output Serial Data Input to Controller / Output from WM9713L
9 DCVDD Supply Digital Core Supply
10 SYNC Digital Input Serial Interface Synchronisation Pulse from Controller
11 RESETB / GPIO7 / (PENDOWN) Digital In / Out Reset (asynchronous, active Low, resets all registers to their default) / GPIO7 / (pen down output) 12 WIPER / AUX4 / GPIO8 / (SPDIF) Analogue In / Out Top Sheet Connection for 5-wire Touchpanels / Auxiliary ADC input / GPIO8 / (SPDIF digital audio output)
13 TPVDD Supply Touchpanel Driver Supply
14 X+/ BR Analogue Input Touchpanel Connection: X+ (Right) for 4-wire / bottom right for 5-
15 Y+/TR Analogue Input Touchpanel Connection: Y+ (Top) for 4-wire / top right for 5-wire
16 X-/TL Analogue Input Touchpanel Connection: X- (Left) for 4-wire / top left for 5-wire
17 Y-/BL Analogue Input Touchpanel Connection: Y- (Bottom) for 4-wire / bottom left for 5-
18 TPGND Supply Touchpanel Driver Ground
19 PCBEEP Anal ogue Input Line Input to analogue audio mixers, typically used for beeps
20 MONOIN Analogue Input Mono Input (RX)
21 MIC1 Analogue Input Microphone preamp A input 1
22 MICCM Analogue Input Microphone common mode input
23 LINEL Analogue Input Left Line Input
24 LINER Analogue Input Right Line Input
25 AVDD Supply Analogue Supply (audio DACs, ADCs, PGAs, mic amps, mixers)
26 AGND Supply Analogue Ground
27 VREF Analogue Output Internal Reference Voltage (buffered CAP2)
28 MICBIAS Analogue Output Bias Voltage for Microphones (buffered CAP2 × 1.8)
29 MIC2A / COMP1 / AUX1 Analogue Input Microphone preamp A input 2 / COMP1 input / Auxillary ADC input
30 MIC2B / COMP2 / AUX2 Analogue Input Microphone preamp B input / COMP2 input / Auxillary ADC input
31 MONO Analog output Mono output driver (line or headphone)
32 CAP2 Analogue In / Out Internal Reference Voltage (normally AVDD/2, if not overdriven)
33 OUT4 Analogue Output Auxillary output driver (speaker, line or headphone)
34 SPKGND S upply Speaker ground (feeds output buffers on pins 33, 35, 36 and 37)
35 SPKL Analogue Output Left speaker driver (speaker, line or headphone)
36 SPKR Analogue Output Right speaker driver (speaker, line or headphone)
37 OUT3 Analogue Output Auxillary output driver (speaker, line or headphone)
38 SPKVDD S upply Speaker supply (feeds output buffers on pins 33, 35, 36 and 37)
39 HPL Analogue Output Headphone left driver (line or headphone)
40 HPGND Supply Headphone ground (feeds output buffers on pins 39 and 41)
41 HPR Analogue Output Headphone right driver (line or headphone)
42 AGND2 Supply Analogue ground, chip substrate
43 HPVDD Supply Headphone supply (feeds output buffers on pins 39 and 41)
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 PIN NAME TYPE DESCRIPTION
44 GPIO1 / PCMCLK Digital In / Out GPIO Pin 1 or PCM interface clock
45 GPIO2 / IRQ Digital In / Out GPIO Pin 2 or IRQ (Interrupt Request) output
46 GPIO3 / PENDOWN / PCMFS Digital In / Out GPIO Pin 3 or pen down output or PCM frame signal
47 GPIO4 / ADA / MASK / PCMDAC Digital In / Out GPIO Pin 4 or ADA (ADC data available) output or Mask input or PCM input (DAC) data
48 GPIO5 / SPDIF / PCMADC Digital In / Out GPIO Pin 5 or SPDIF digital audio output or PCM output (ADC)
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 ABSOLUTE MAXIMUM RATINGS Absolute Maximum Ratings are stress ratings only. Permanent damage to the device may be caused by continuously operating at or beyond these limits. Device functional operating limits and guaranteed performance specifications are given under Electrical Characteristics at the test conditions specified. ESD Sensitive Device. This device is manufactured on a CMOS process. It is therefore generically susceptible to damage from excessive static voltages. Proper ESD precautions must be taken during handling and storage of this device. Wolfson tests its package types according to IPC/JEDEC J-STD-020B for Moisture Sensitivity to determine acceptable storage conditions prior to surface mount assembly. These levels are: MSL1 = unlimited floor life at <30°C / 85% Relative Humidity. Not normally stored in moisture barrier bag. MSL2 = out of bag storage for 1 year at <30°C / 60% Relative Humidity. Supplied in moisture barrier bag. MSL3 = out of bag storage for 168 hours at <30°C / 60% Relative Humidity. Supplied in moisture barrier bag. The Moisture Sensitivity Level for each package type is specified in Ordering Information. CONDITION MIN MAX Digital supply voltages (DCVDD, DBVDD) -0.3V +3.63V Analogue supply voltages (AVDD, HPVDD, TPVDD) -0.3V +3.63V Speaker supply voltage (SPKVDD) -0.3V +4.2V Touchpanel supply voltage (TPVDD) AVDD +0.3V Voltage range digital inputs DGND -0.3V DBVDD +0.3V Voltage range analogue inputs AGND -0.3V AVDD +0.3V Voltage range touchpanel Inputs X+, X-, Y+ and Y- TPVDD +0.3V Voltage range touchpanel Inputs X+, X-, Y+ and Y- AVDD +0.3V Operating temperature range, TA -25oC +85 oC Storage temperature (TQFP package only) -65oC +150 oC RECOMMENDED OPERATING CONDITIONS PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNIT Digital input/output buffer supply range DBVDD 1.62 (target) 3.3 3.6 V Digital core supply range DCVDD 1.62 (target) 1.8 3.6 V Analogue supply range AVDD, HPVDD, TPVDD 1.8 3.3 3.6 V Speaker supply range SPKVDD 1.8 3.3 4.2 V Digital ground DGND1, DGND2 0 V Analogue ground AGND, HPGND, SPKGND, TPGND 0 V Difference AGND to DGND Note 1 -0.3 0 +0.3 V Note: 1. AGND is normally the same as DGND1/DGND2 2. DCVDD <= DBVDD and DCVDD <= AVDD
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2
ELECTRICAL CHARACTERISTICS
DBVDD=3.3V, DCVDD = 3.3V, AVDD=HPVDD=SPKVDD =3.3V, TA = +25oC, 1kHz signal, fs = 48kHz, 24-bit audio data unless otherwise stated. PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNIT DAC to Line-Out (HPL/R or MONO with 10kΩΩΩΩ / 50pF load) Full-scale output AVDD = 3.3V, PGA gains set to 0dB
1 V r m s
(A-weighted) SNR 85 94 dB Total Harmonic Distortion THD -3dB output -85 -74 dB Power Supply Rejection PSRR 100mV, 20Hz to 20kHz signal on AVDD 50 dB Speaker Output (SPKL/SPKR with 8ΩΩΩΩ bridge tied load, INV=1) Output Power at 1% THD PO THD = 1% 400 mW (rms) Abs. max output power POmax 500 mW (rms) Total Harmonic Distortion THD P O = 200mW -66 0.05 d B Signal to Noise Ratio (A-weighted) SNR 90 dB Stereo Speaker Output (SPKL/OUT4 and SPKR/OUT3 with 8ΩΩΩΩ bridge tied load, INV=1) Output Power at 1% THD PO THD = 1% 400 mW (rms) Abs. max output power POmax 500 mW (rms) Total Harmonic Distortion THD P O = 200mW -66 0.05 d B Signal to Noise Ratio (A-weighted) SNR 90 dB Headphone Output (HPL/R, OUT3/4 or SPKL/SPKR with 16ΩΩΩΩ or 32ΩΩΩΩ load) Output Power per channel PO Output power is very closely correlated with THD; see below. PO=10mW, RL=16Ω -80 PO=10mW, RL=32Ω -80 PO=20mW, RL=16Ω -78 Total Harmonic Distortion THD PO=20mW, RL=32Ω - 7 9 dB Signal to Noise Ratio (A-weighted) SNR 90 dB Note: 1. All THD values are valid for the output power level quoted above – for example, at HPVDD=3.3V and R L=16Ω, THD is –80dB when output power is 10mW. Higher output power is possible, but will result in a deterioration in THD.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 AUDIO INPUTS Test Conditions DBVDD=3.3V, DCVDD = 3.3V, AVDD = 3.3V, TA = +25oC, 1kHz signal, fs = 48kHz, 24-bit audio data unless otherwise stated. PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNIT LINEL/R, MIC1/2A/2B and MONOIN pins AVDD = 3.3V 1.0 AVDD = 1.8V 0.545 Full Scale Input Signal Level (for ADC 0dB Input at 0dB Gain) VINFS differential input mode (MS = 01) half of the value listed above Vrms 0dB PGA gain 25.6 32 38.4 Input Resistance RIN 12dB PGA gain 10.4 13 15.6 kΩ Input Capacitance 5 p F Line input to ADC (LINEL, LINER, MONOIN) Signal to Noise Ratio (A-weighted) SNR 80 87 dB Total Harmonic Distortion THD -86 -80 dB Power Supply Rejection PSRR 20Hz to 20kHz 50 dB Microphone input to ADC (MIC1/2A/2B pins) Signal to Noise Ratio (A-weighted) SNR 20dB boost enabled 80 dB Total Harmonic Distortion THD 20dB boost enabled -80 dB Power Supply Rejection Ratio PSRR 50 dB Common Mode Rejection Ratio CMRR Differential mic mode TBD dB AUXILIARY MONO DAC (AUXDAC) Test Conditions AVDD = 3.3V, TA = +25oC, unless otherwise stated. PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNIT Resolution 12 bits Full scale output voltage AVDD=3.3V 1 Vrms Signal to Noise Ratio (A-weighted) SNR TBD dB Total Harmonic Distortion THD TBD dB PCM VOICE DAC (VXDAC) Test Conditions AVDD = 3.3V, TA = +25oC, unless otherwise stated. PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNIT Resolution 16 bits Sample rates 8 16 Ks/s Full scale output voltage AVDD=3.3V 1 Vrms Signal to Noise Ratio (A-weighted) SNR 80 dB Total Harmonic Distortion THD 74 dB
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 TOUCHPANEL AND AUXILIARY ADC Test Conditions PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNIT Input Pins X+, X-, Y+, Y-, WIPER/AUX4, COMP1/AUX1, COMP2/AUX2 Input Voltage AGND AVDD V Input leakage current AUX pin not selected as AUX ADC input <10 nA ADC Resolution 12 bits Differential Non-Linearity Error DNL ±0.25 ±1 LSB Integral Non-Linearity Error INL ±2 LSB Offset Error ±4 LSB Gain Error ±6 LSB Power Supply Rejection PSRR 50 dB Channel-to-channel isolation 80 dB Throughput Rate DEL = 1111 (zero settling time) 48 kHz Settling Time (programmable) MCLK = 24.576MHz 0 6 ms Switch matrix resistance 20 Ω Programmable Pull-up resistor R PU RPU = 000001 1 63 k Ω Pen down detector threshold V D D / 2 V PIL = 1 400 Pressure measurement current I P PIL = 0 200 µA COMPARATORS Test Conditions AVDD = 3.3V, TA = +25oC, unless otherwise stated. PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNIT COMP1/AUX1 and COMP2/AUX2 (pins 29, 30 – when not used as mic inputs) Input Voltage AGND AVDD V Input leakage current pin not selected as AUX ADC input <10 nA Comparator Input Offset (COMP1, COMP2 only) -50 +50 mV COMP2 delay (COMP2 only) MCLK = 24.576MHz 0 10.9 s REFERENCE VOLTAGES Test Conditions DBVDD=3.3V, DCVDD = 3.3V, AVDD = 3.3V, TA = +25oC, 1kHz signal, fs = 48kHz, 24-bit audio data unless otherwise stated. PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNIT Audio ADCs, DACs, Mixers Reference Input/Output CAP2 pin 1.63 1.65 1.66 V Buffered Reference Output VREF pin 1.64 1.65 1.67 V Microphone Bias Bias Voltage VMICBIAS 2.92 2.97 3.00 V Bias Current Source IMICBIAS 3 m A Output Noise Voltage Vn 1K to 20kHz 15 nV/ √Hz
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 DIGITAL INTERFACE CHARACTERISTICS Test Conditions DBVDD = 3.3V, DCVDD = 3.3V, TA = +25oC, unless otherwise stated. PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNIT Digital Logic Levels (all digital input or output pins) – CMOS Levels Input HIGH level V IH DBVDD ×0.7 V Input LOW level V IL D B V D D ×0.3 V Output HIGH level V OH source current = 2mA DBVDD ×0.9 Output LOW level V OL sink current = 2mA DBVDD ×0.1 Clock Frequency Master clock (MCLKA pin) 24.576 MHz AC’97 bit clock (BIT_CLK pin) 12.288 MHz AC’97 sync pulse (SYNC pin) 48 kHz Note: 1. All audio and non-audio sample rates and other timing scales proportionately with the master clock. 2. For signal timing on the AC-Link, please refer to the AC’97 specification (Revision 2.2)
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 HEADPHONE / SPEAKER OUTPUT THD VERSUS POWER Headphone Power vs THD+N (32Ohm load) -100 -80 -60 -40 -20 0 5 10 15 20 25 30 Power (mW) THD+N (dB) Headphone Power vs THD+N (16Ohm load) -100 -80 -60 -40 -20 0 1 02 03 04 05 06 0 Power (mW) THD+N (dB)
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 POWER CONSUMPTION TBA
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 DEVICE DESCRIPTION INTRODUCTION The WM9713L is a largely pin compatible upgrade to WM9712, with a PCM voice codec added. This codec is interfaced via a PCM type audio interface which makes use of GPIO pins for connection. It is designed to meet the mixed-signal requirements of portable and wireless smartphone systems. It includes audio recording and playback, touchpanel digitisation, battery monitoring, auxiliary ADC and GPIO functions, all controlled through a single 5-wire AC-Link interface. Additionally, PCM voice codec functions are supported through provision of an additional voice DAC and a PCM audio serial interface. A PLL is included to allow unrelated reference clocks to be used for generation of the AC link system clock. Typically 13MHz or 2.048MHz references might be used as a reference. SOFTWARE SUPPORT The basic audio features of the WM9713L are software compatible with standard AC’97 device drivers. However, to better support the touchpanel and other additional functions, Wolfson Microelectronics supplies custom device drivers for selected CPUs and operating systems. Please contact your local Wolfson Sales Office for more information. AC’97 COMPATIBILITY The WM9713L uses an AC’97 interface to communicate with a microprocessor or controller. The audio and GPIO functions are largely compliant with AC’97 Revision 2.2. The following differences from the AC’97 standard are noted:
- Pinout: The function of some pins has been changed to support device specific features. The PHONE and PCBEEP pins have been moved to different locations on the device package.
- Package: The default package for the WM9713L is a 7 ×7mm leadless QFN package.
- Audio mixing: The WM9713L handles all the audio functions of a smartphone, including audio playback, voice recording, phone calls, phone call recording, ring tones, as well as simultaneous use of these features. The AC’97 mixer architecture does not fully support this. The WM9713L therefore uses a modified AC’97 mixer architecture with three separate mixers.
- Tone Control, Bass Boost and 3D Enhancement: These functions are implemented in the digital domain and therefore affect only signals being played through the audio DACs, not all output signals as stipulated in AC’97. Some other functions are additional to AC’97:
- On-chip BTL loudspeaker driver for mono or stereo speakers
- On-chip BTL driver for ear speaker (phone receiver)
- Auxiliary mono DAC for ring tones, system alerts etc.
- Touchpanel controller
- Auxiliary ADC Inputs
- 2 Analogue Comparators for Battery Alarm
- Programmable Filter Characteristics for Tone Control and 3D Enhancement
- PCM interface to additional Voice DAC and existing audio ADCs
- PLL to create AC’97 system clock from unrelated reference clock input
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 PCM CODEC The PCM voice codec functions typically required by mobile telephony devices are provided by an extra voice DAC on the WM9713L, which is interfaced via a standard PCM type data interface, which is constructed through optional use of 4 of the GPIO pins on WM9713L. The audio output data from one or both of the audio ADCs can also be output over this PCM interface, allowing a full voice codec function to be implemented. This codec supports sample rates from 8 to 48ks/s using the standard AC’97 masterclock, with the WM9713L PCM interface always acting as a master.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 AUDIO PATHS OVERVIEW WM9713 Analogue LINEL
12 Bit Resistor
Note: all PGAs and summers are inverting DACR DACL LINER LINEL PCBEEP MONOIN MICB MICA RECMUXR RECMUXL AUXDAC VXDAC PCBEEP MONOIN 08h:12-8 00000 = +12dB 11111 = -34.5dB 0Eh:12-8 00000 = +12dB 11111 = -34.5dB 0Ah:12-8 00000 = +12dB 11111 = -34.5dB DACR DACL LINER LINEL PCBEEP MONOIN MICB MICA RECMUXR RECMUXL AUXDAC VXDAC 0Ah:4-0 00000 = +12dB 11111 = -34.5dB 0Eh:4-0 00000 = +12dB 11111 = -34.5dB LINER AGNDAVDD CAP VREF VMICBIAS 6dB -> -15dB 6dB -> -15dB 6dB -> -15dB Headphone Mixer L 0Ch:150Ah:1508h:1516h:15-1210h:4-0 10h:4-0 14h:15-11 14h:15-11 1Ah:15-12 18h:15-12 6dB -> -15dB 6dB -> -15dB 6dB -> -15dB 6dB -> -15dB 0dB / 20dB 0dB / 20dB 0dB / 20dB 0dB / 20dB 6dB -> -15dB 6dB -> -15dB 6dB -> -15dB MONO Mixer 0Ch:130Ch:130Ah:130Ah:13 16h7:4 10h:7+5 10h:6+5 14h:10-8 1Ah:7-414h:10-8 18h:7-4 Speaker Mixer 0Ah:140Ah140Ch:14 0Ch:14 08h:14 16h:11-8 1Ah:11-8 18h:11-86dB -> -15dB 6dB -> -15dB 6dB -> -15dB DACR DACL LINER LINEL PCBEEP MONOIN MICB MICA RECMUXR RECMUXL AUXDAC VXDAC ADC Right AC'97 Link 40h:7 (Loopback)
18 Bit DACR
40h:13 (3DE) 0Ch:4-0 00000 = +12dB 11111 = -34.5dB ADC Left AC'97 Link 40h:7 (Loopback)
18 Bit DACL
40h:13 (3DE) 0Ch:12-8 00000 = +12dB 11111 = -34.5dB LINER LINEL MICB MICA PCBEEP MONOIN LINER LINEL MICB MICA PCBEEP MONOIN LINER LINEL MICB MICA PCBEEP MONOIN LINER LINEL MICB MICA PCBEEP MONOIN MIC1 MIC2A MICCM MIC2B Vmid Vmid Vmid 22h:11-10 00 = +12dB 11 = +30dB 22h:9-8 00 = +12dB 11 = +30dB 22h: 13-12
16 Bit PCM
AC'97 Link PCM Link DACR DACL LINER LINEL PCBEEP MONOIN MICB MICA RECMUXR RECMUXL AUXDAC VXDAC DACR DACL LINER LINEL PCBEEP MONOIN MICB MICA RECMUXR RECMUXL AUXDAC VXDAC LINER LINEL MICB MICA PCBEEP MONOIN 1Eh:12-10 MONOMIX HPMIXL HPMIXR SPKMIX INV1 INV2 MONOMIX HPMIXL HPMIXR SPKMIX INV1 INV2 MONOMIX HPMIXL HPMIXR SPKMIX INV1 INV2 MONOMIX HPMIXL HPMIXR SPKMIX INV1 INV2 MONOMIX HPMIXL HPMIXR SPKMIX INV1 INV2 08h:4-0 00000 = 0dB 11111 = -46.5dB Zero-cross detect 08h:6 (ZC) 08h:7 (MUTE) MONO 1Ch:15-14 Vmid 02h:12-8 00000 = 0dB 11111 = -46.5dB Zero-cross detect 02h:14 (ZC) 02h:15 (MUTE) SPKL 1Ch:13-11 Vmid 04h:12-8 00000 = 0dB 11111 = -46.5dB Zero-cross detect 04h:14 (ZC) 04h:15 (MUTE) 1Ch:7-6 Vmid HPL 06h:4-0 00000 = 0dB 11111 = -46.5dB Zero-cross detect 06h:6 (ZC) 06h:7 (MUTE) OUT3 1Ch:3-2 Vmid 06h:12-8 00000 = 0dB 11111 = -46.5dB Zero-cross detect 06h:14 (ZC) 06h:15 (MUTE) OUT4 1Ch:1-0 Vmid 02h:4-0 00000 = 0dB 11111 = -46.5dB Zero-cross detect 02h:6 (ZC) 02h:7 (MUTE) SPKR 1Ch:10-8 Vmid 04h:4-0 00000 = 0dB 11111 = -46.5dB Zero-cross detect 04h:6 (ZC) 04h:7 (MUTE) HPR 1Ch:5-4 Vmid DACR DACL LINER LINEL PCBEEP MONOIN MIC2 MICA RECMUXR RECMUXL AUXDAC VXDAC DACL LINEL PCBEEP MONOIN MICB MICA RECMUXR RECMUXL AUXDAC VXDAC DACL LINEL PCBEEP LINER MICB MICA RECMUXR RECMUXL AUXDAC VXDAC DACR DACR LINER PCBEEP MONOIN MICB MICA RECMUXR RECMUXL AUXDAC VXDAC LINER LINEL DACR DACL PCBEEP MONOIN AUXDAC VXDAC HPMIXL HPMIXL SPKMIX INV1 MONOMIX INV1 INV1 INV2 HPMIXR HPMIXR SPKMIX INV2
18 Bit ADC
5C:1-0 (ASS) 5C:3 (HPF) 5C:4 (ADCO) ALC:5Ch/60h/62h 14h:5-3 12h:14 (GRL=1) 12h:13-8 11111 = +30dB 00000 = -17.25dB 14h:6 0 = 0dB 1 = 20dB 12h:14 (GRL=0) 12h:11:8 0000 = 0db 1111 = +22.5dB PCM Link AC'97 Link Sent to Both 5C:1-0 (ASS) 5C:3 (HPF) 5C:4 (ADCO) ALC:5Ch/60h/62h 14h:2-0 12h:6 (GRR=1) 12h:5-0 11111 = +30dB 00000 = -17.25dB 14h:6 0 = 0dB 1 = 20dB 12h:6 (GRR=0) 12h:3:0 0000 = 0db 1111 = +22.5dB PCM Link AC'97 Link Sent to Both 6dB -> -15dB 6dB -> -15dB 6dB -> -15dB Headphone Mixer R 0Ch:150Ah:1508h:1516h:15-1210h:4-0 10h:4-0 14h:15-11 14h:15-11 1Ah:15-12 18h:15-12 6dB -> -15dB 6dB -> -15dB 6dB -> -15dB 6dB -> -15dB 1Eh:15-13 PR0 - Audio ADCs & record mux PR1 - Stereo DAC PR2 - Input PGAs & mixers PR3 - Refs, input PGAs, mixers & output PGAs PR6 - Output PGAs PR Bit Code Note: PR bits are active low - i.e. 0 = "ON"; 1 = "OFF" => Enable when { (PR0 || PR2) && PR3 } are low Figure 1 Audio Paths Overview
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 CLOCK GENERATION WM9713L supports clocking from 2 separate sources, which can be selected via the AC’97 interface:
- External clock input MCLKA
- External clock input MCLKB The source clock is divided to appropriate frequencies in order to run the AC’97 interface, PCM interface, voice DAC and Hi-fi DSP by means of a programmable divider block. Clock rates may be changed during operation via the AC’97 link in order support alternative modes, for example low power mode when voice data is being transmitted only. A PLL is present to add flexibility in selection of input clock frequencies, typical choices being 2.048MHz, 4.096MHz or 13MHz. Default mode on power-up assumes a clock will be present on MCLKA with the PLL powered down. This enables data to be clocked via the AC’97 link to define the desired clock divider mode and whether PLL needs to be activated. Note: This clock can be any available frequency. When muxing between MCLKA and MCLKB both clocks must be active for at least two clock cycles after the switching event. CLOCK DIVISION MODES Figure 2 shows the clocking strategy for WM9713L. Clocking is controlled by CLK_MUX, CLK_SRC and S[6:0].
- CLKAX2, CLKBX2 – clock doublers on inputs MCLKA and MCLKB.
- CLK_MUX - selects between MCLKA and MCLKB.
- CLK_SRC – selects between external or PLL derived clock reference.
- S[3:0] – sets the voice DAC clock rate and PCM interface clock when in master mode (division ratio 1 to 16 available).
- S[6:4] - sets the hi-fi clocking rate (division ratio 1 to 8 available). The registers used to set these switches can be accessed from register address 44h (see Table 1). If a mode change requires switching from an external clock to a PLL generated clock then it is recommended to set the clock division ratios required for the PLL clock scheme prior to switching between clocks. This option is accommodated by means of two sets of registers S PLL[6:0] and SEXT[6:0]. If the PLL is selected (CLK_SRC = 0) S[6:0] = S PLL[6:0], if an external clock is selected (CLK_SRC = 1) S[6:0] = SEXT[6:0]. SEXT[6:0] is defined in register address 44h. SPLL[6:0] is defined in register 46h (see Table 3) which also contains a number of separate control bits relating to the PLL’s function. Writing to registers 44h and 46h enables pre-programming of the required clock mode before the PLL output is selected.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 Figure 2 Clocking Architecture for WM9713L
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 Clock mode and division ratios are controlled by register 44h as shown in Table 1. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 14:12 S EXT[6:4] 000 (div 1) Defines clock division ratio for Hi-fi block: 000: f 001: f/2 ... 111: f/8 11:8 S EXT[3:0] 0000 (div 1) Defines clock division ratio for PCM interface and voice DAC: 0000: f 0001: f/1 1111: f/16
7 CLKSRC 1 (ext clk) Selects between PLL clock and External
5:3 PENDIV 000 (div 16) Sets PENADC clock divisor 000: f/16 001: f/12 010: f/8 011: f/6 100: f/4 101: f/3 110: f/2 111: f
2 CLKBX2 0 (Off) Clock doubler for MCLKB
1 CLKAX2 0 (Off) Clock doubler for MCLKA
0 CLKMUX 0 (MCLKA) Selects between MCLKA and MCLKB
(N.B. On power-up clock must be present on MCLKA and must be active for 2 clock cycles after switching to MCLKB) Table 1 Clock Muxing and Division Control INTERNAL CLOCK FREQUENCIES The internal clock frequencies are defined as follows (refer to Figure 2):
- AC97 CLK – nominally 24.576MHz, used to generate AC97 BITCLK at 12.288MHz.
- HIFI CLK – for HIFI playback at 48ks/s HIFI CLK = 24.576MHz. See Table 2 for voice only playback.
- PCM CLK – see Table 2 for sample rate vs clock frequency. SAMPLE RATE PCM CLK FREQUENCY HIFI CLK FREQUENCY 8ks/s voice and HIFI 2.048MHz 24.576MHz 8ks/s voice only (power save) 2.048MHz 4.096MHz 16ks/s voice and HIFI 4.096MHz 24.576MHz 16ks/s voice only (power save) 4.096MHz 8.192MHz 32ks/s voice and HIFI 8.192MHz 24.576MHz 48ks/s voice and HIFI 12.288MHz 24.576MHz Table 2 Clock Division Mode Table
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 PEN ADC The clock for the PENADC nominally runs at 768kHz and is derived from BITCLK. The divisor for the clock generator is set by PENDIV. This enables the PENADC clock frequency to be set according to power consumption and conversion rate considerations. PLL MODE The PLL operation is controlled by register 46h (see Table 3) and has two modes of operation:
- Integer N
- Fractional N The PLL has been optimized for nominal input clock (PLL_IN) frequencies in the range 8.192MHz – 19.661MHz (LF=0) and 2.048MHz – 4.9152MHz (LF=1). Through use of a clock divider (div by 2 / 4) on the input to the PLL frequencies up to 78.6MHz can be accommodated. The input clock divider is enabled by DIVSEL (0=Off) and the division ratio is set by DIVCTL (0=div2, 1=div4). Figure 3 PLL Architecture REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 15:12 N[3:0] 0000 PLL integer division control (must be set between 5-12 for integer N mode)
11 LF 0 = off Allows PLL operation with low frequency
input clocks (< 8.192MHz) 10 SDM 0 = off Sigma Delta Modulator enable. Allows fractional N division
9 DIVSEL 0 = off Enables input clock to PLL to be divided by
2 or 4. Use if input clock is above 14.4MHz
8 DIVCTL 0 Controls division mode when DI VSEL is
high. 0 = div by 2, 1= div by 4. 6:4 PGADDR 000 Pager address bits to access programming of K[21:0] and SPLL[7:0] 46h 3:0 PGDATA 0000 Pager data bits Table 3 PLL Clock Control
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 INTEGER N MODE The nominal output frequency of the PLL (PLL_OUT) is 98.304MHz which is divided by 4 to achieve a nominal system clock of 24.576MHz. The integer division ratio (N) is determined by: F PLL_out / FPLL_IN , and is set by N[3:0] and must be in the range 5 to 12 for integer N operation (0101 = div by 5, 1100 = div by 12). Note that setting LF=1 enables a further division by 4 required for input frequencies in the range 2.048MHz – 4.096MHz. Integer N mode is selected by setting SDM=0. FRACTIONAL N MODE Fractional N mode provides a divide resolution of 1/2 22 and is set by K[21:0] (register 46h, see section PLL Register Page Address Mapping). The relationship between the required division X, the fractional division K[21:0] and the integer division N[3:0] is: () NXK −= 222 where 0 < (X – N) < 1 and K is rounded to the nearest whole number. For example, if the PLL_IN clock is 13MHz and the desired PLL_OUT clock is 98.304MHz then the desired division, X, is 7.5618. So N[3:0] will be 7h and K[21:0] will be 23F488h to produce the desired 98.304MHz clock (see Table 4). INPUT CLOCK (PLL_IN) DESIRED PLL OUTPUT (PLL_OUT) DIVISION REQUIRED (X) FRACTIONAL DIVISION (K) INTEGER DIVISION (N) 2.048MHz 98.304MHz 48 0 12x4* 4.096MHz 98.304MHz 24 0 6x4* 12.288MHz 98.304MHz 8 0 8 13MHz 98.304MHz 7.5618 0.5618 7 27MHz (13.5MHz)** 98.304MHz 7.2818 0.2818 7 *Divide by 4 enabled in PLL feedback path for low frequency inputs. (LF = 1) **Divide by 2 enabled at PLL input for frequencies > 14.4MHz > 38MHz (DIVSEL = 1, DIVCTL = 0) Table 4 PLL Modes of Operation PLL REGISTER PAGE ADDRESS MAPPING The clock division control bits S PLL[6:0] and the PLL fractional N division bits are accessed through register 46h using a sub-page address system. The 3 bit pager address allows 8 blocks of 4 bit data words to be accessed whilst the register address is set to 46h. This means that when register address 46h is selected a further 7 cycles of programming are required to set all of the page data bits. Control bit allocation for these page addresses is described in Table 5. PAGE ADDRESS BIT LABEL DEFAULT DESCRIPTION 111 31:28 S PLL[6:4] 0h 110 27:24 S PLL[3:0] 0h Clock division control bus SPLL[6:0]. Clock divider reads this control word if PLL is enabled 23:22 SPARE 0h Spare control bits 101 21:20 0h 100 19:16 0h 011 15:12 0h 010 11:8 0h 001 7:4 0h 000 3:0 K[21:0] Sigma Delta Modulator control word for fractional N division. Division resolution is Table 5 Pager Control Bit Allocation
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 Powerdown for the PLL and internal clocks is via registers 26h and 3Ch (see Table 6). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 26h 13 PR5 1 (Off) Internal clock disable (active high) 3Ch 9 PLL 1 (Off) PLL powerdown (active high) N.B. both PR5 and PLL must be asserted low before PLL is enabled Table 6 PLL Powerdown Control DATA AND CONTROL INTERFACE The WM9713L has two interfaces, a data and control AC’97 interface and a data only PCM interface. The AC’97 interface is available through dedicated pins (SDATAOUT, SDATAIN, SYNC, BITCLK and RESETB) and is the sole control interface with access to all data streams on the device except for the Voice DAC. The PCM interface is available through the GPIO pins (PCMCLK, PCMFS, PCMDAC and PCMADC) and provides access to the Voice DAC. It can also transmit the data from the Stereo ADC. This can be useful, for example, to allow both sides of a phone conversation to be recorded by mixing the transmit and receive paths on one of the ADC channels and transmitting it over the PCM interface. AC97 INTERFACE INTERFACE PROTOCOL The WM9713Lhas a single AC’97 interface for both data transfer and control. The AC-Link uses 5 wires:
- SDATAIN (pin 8) carries data from the WM9713L to the controller
- SDATAOUT (pin 5) carries data from the controller to the WM9713L
- BITCLK (pin 6) is a clock, derived from either MCLKA or MCLKB inputs and supplied to the controller.
- SYNC is a synchronization signal generated by the controller and passed to the WM9713L
- RESETB resets the WM9713L to its default state Figure 4 AC-Link Interface (typical case with BITCLK generated by the AC97 codec) The SDATAIN and SDATAOUT signals each carry 13 time-division multiplexed data streams (slots 0 to 12). A complete sequence of slots 0 to 12 is referred to as an AC-Link frame, and contains a total of 256 bits. The frame rate is 48kHz. This makes it possible to simultaneously transmit and receive multiple data streams (e.g. audio, touchpanel, AUXDAC, control) at sample rates up to 48kHz. Detailed information can be found in the AC’97 (Revision 2.2) specification, which can be obtained at www.intel.com/labs/media/audio/
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 Note: SDATAOUT and SYNC must be held low for when RESETB is applied. These signals must be held low for the entire duration of the RESETB pulse and especially during the low-to-high transition of RESETB. If either is set high during reset the AC'97 device may enter test modes. Information relating to this operation is available in the AC'97 specification or in Wolfson applications note WAN- 0104 available at www.wolfsonmirco.com. PCM INTERFACE OPERATION WM9713L can implement a PCM voice codec function using the dedicated VXDAC and either one or both of the existing hi-fi ADC’s. In PCM codec mode, VXDAC input and ADC output are interfaced via a PCM style port via GPIO pins. This interface can support one ADC channel, or stereo/dual ADC channels if required, (two channels of data are sent per PCM frame as back to back words). In voice only mode, the AC link is used only for control information, not audio data. Therefore it will generally be shut down (PR4=1), except when control data must be sent. The PCM interface makes use of 4 of the GPIO interface pins, for clock, frame, and data in/out. If the PCM codec function is not enabled then the GPIO pins may be used for other functions as on WM9713L INTERFACE PROTOCOL The WM9713L PCM audio interface is used for the input of data to the Voice DAC and the output of data from the Stereo ADC. When enabled, the PCM audio interface uses four GPIO pins:
- GPIO1/PCMCLK: Bit clock
- GPIO3/PCMFS: Frame Sync
- GPIO4/PCMDAC: Voice DAC data input
- GPIO5/PCMADC: Stereo ADC data output When not enabled the GPIOs may be used for other functions on the WM9713L. PCM INTERFACE MODES The WM9713L PCM audio interface may be configured in one of four modes:
- Disabled Mode: The WM9713L disables and tri-states all PCM interface pins. Any clock input is ignored and ADC/DAC data is not transferred.
- Slave Mode: The WM9713L accepts PCMCLK and PCMFS as inputs from an external source.
- Master Mode: The WM9713L generates PCMCLK and PCMFS as outputs.
- Partial Master Mode: The WM9713L generates PCMCLK as an output, and accepts PCMFS as an external input. The PCMDAC and PCMADC pins are normally used as DAC input and ADC output respectively. The WM9713L allows these functions to be swapped allowing DAC input on PCMADC and ADC output on PCMDAC. PCM AUDIO DATA FORMATS Four different audio data formats are supported:
- DSP mode
- Left justified
- Right justified
- I 2S All four of these modes are MSB first. They are described below. Refer to the Electrical Characteristic section for timing information.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 The PCM Interface may be configured for Mono mode, where only one channel of ADC data is output. In this mode the interface should be configured for DSP mode. A short or long frame sync is supported and the MSB is available on either the 1st (mode B) or 2nd (mode A) rising edge of VXCLK. Note that when operating in stereo mode the mono Voice DAC always uses the left channel data as its input. PCMFS PCMCLK PCMADC/ PCMDAC n321 n-2 n-1 LSBMSB
1 PCMCLK
Input Word Length (WL) 1/fs Figure 5 PCM Interface Mono Mode (mode A, FSP=0) PCMFS PCMCLK PCMADC/ PCMDAC n321 n-2 n-1 LSBMSB Input Word Length (WL) 1/fs Figure 6 PCM Interface Mono Mode (mode B, FSP=1) In DSP mode, the left channel MSB is available on either the 1st (mode B) or 2nd (mode A) rising edge of PCMCLK (selectable by FSP) following a rising edge of PCMFS. Right channel data immediately follows left channel data. Depending on word length, PCMCLK frequency and sample rate, there may be unused PCMCLK cycles between the LSB of the right channel data and the next sample.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 LEFT CHANNEL RIGHT CHANNEL PCMFS PCMCLK PCMADC/ PCMDAC n321 n-2 n-1 LSBMSB n321 n-2 n-1
1 BCLK / VXCLK
Input Word Length (WL) 1/fs Figure 7 DSP Mode Audio Interface (mode A, FSP=0) LEFT CHANNEL RIGHT CHANNEL PCMFS PCMCLK PCMADC/ PCMDAC n321 n-2 n-1 LSBMSB n321 n-2 n-1 Input Word Length (WL) 1/fs Figure 7 DSP Mode Audio Interface (mode B, FSP=1) In Left Justified mode, the MSB is available on the first rising edge of PCMCLK following a PCMFS transition. The other bits up to the LSB are then transmitted in order. Depending on word length, PCMCLK frequency and sample rate, there may be unused PCMCLK cycles before each PCMFS transition. LEFT CHANNEL RIGHT CHANNEL PCMFS PCMCLK PCMADC/ PCMDAC 1/fs n321 n-2 n-1 LSBMSB n321 n-2 n-1 LSBMSB Figure 8 Left Justified Audio Interface (assuming n-bit word length) In Right Justified mode, the LSB is available on the last rising edge of PCMCLK before a PCMFS transition. All other bits are transmitted before (MSB first). Depending on word length, PCMCLK frequency and sample rate, there may be unused PCMCLK cycles after each PCMFS transition.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 LEFT CHANNEL RIGHT CHANNEL PCMFS PCMCLK PCMADC / PCMDAC 1/fs n321 n-2 n-1 LSBMSB n321 n-2 n-1 LSBMSB Figure 9 Right Justified Audio Interface (assuming n-bit word length) In I2S mode, the MSB is available on the second rising edge of PCMCLK following a PCMFS transition. The other bits up to the LSB are then transmitted in order. Depending on word length, PCMCLK frequency and sample rate, there may be unused PCMCLK cycles between the LSB of one sample and the MSB of the next. LEFT CHANNEL RIGHT CHANNEL PCMFS PCMCLK PCMADC/ PCMDAC 1/fs n321 n-2 n-1 LSBMSB n321 n-2 n-1 LSBMSB
1 BCLK1 BCLK
Figure 10 I2S Justified Audio Interface (assuming n-bit word length) CONTROL The register bits controlling PCM audio format, word length and operating modes are summarised below. CTRL must be set to override the normal use of the PCM interface pins as GPIOs, MODE must be set to specify master/slave modes. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 CTRL 0 Sets function and control registers for GPIO /
PCM interface pins. 0 = GPIO pins as GPIOs 1 = GPIO pins configured as PCM interface and controlled by this register 14:13 MODE 10 PCM interface mode when CTRL=1 00 = PCM interface disabled [PCMCLK tri- stated, PCMFS tri-stated] 01 = PCM interface in slave mode [PCMCLK as input, PCMFS as input] 10 = PCM interface in master mode [PCMCLK as output, PCMFS as output] 11 = PCM interface in partial master mode [PCMCLK as output, PCMFS as input] 36h PCM Control
12 SWAP 0 PCM data swap
0 = DAC data input on PCMDAC, ADC data output on PCMADC 1 = DAC data input on PCMADC, ADC data output on PCMDAC
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 11:9 DIV 010 Voice DAC clock to PCMCLK divider. In master mode PCMCLK is derived from Voice DAC clock. 000 : PCMCLK = Voice DAC clock 001 : PCMCLK = Voice DAC clock / 2 010 : PCMCLK = Voice DAC clock / 4 011 : PCMCLK = Voice DAC clock / 8 100 : PCMCLK = Voice DAC clock / 16
8 VDACOS
R
1 VXDAC oversample rate:
0: 128 x fs 1: 64 x fs
7 CP 0 PCMCLK polarity
1 = invert PCMCLK polarity 0 = normal PCMCLK polarity
6 FSP 0 Right, Left and I 2S modes – PCMFS polarity
1 = invert PCMFS polarity 0 = normal PCMFS polarity DSP Mode – mode A/B select 0 = MSB is available on 2nd PCMCLK rising edge after LRC rising edge (mode A) 1 = MSB is available on 1st PCMCLK rising edge after LRC rising edge (mode B) 5:4 SEL 10 PCM ADC channel select 00 = Output left and right ADC data 01 = Swap and output left and right ADC data 10 = Output left ADC data only 11 = Output right ADC data only 3:2 WL 00 PCM Data Word Length 11 = 32 bits (see Note) 10 = 24 bits 01 = 20 bits 00 = 16 bits 1:0 FMT 11 PCM Data Format Select 11 = DSP Mode 10 = I2S Format 01 = Left justified 00 = Right justified Table 7 PCM Codec Control Note: Right justified does not support 32-bit data.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 AUDIO ADCS STEREO ADC The WM9713L has a stereo sigma-delta ADC to digitize audio signals. The ADC achieves high quality audio recording at low power consumption. The ADC sample rate can be controlled by writing to a control register (see “Variable Rate Audio”). It is independent of the DAC sample rate. To save power, the left and right ADCs can be separately switched off using the Powerdown bits ADCL and ADCR (register 3Ch, bits 5:4), whereas PR0 disables both ADCs (see “Power Management” section). If only one ADC is running, the same ADC data appears on both the left and right AC-Link slots. The output from the ADC can be sent over either the AC link as usual, or output via the PCM interface which may be configured on the GPIO pins. HIGH PASS FILTER The WM9713L audio ADC incorporates a digital high pass filter that eliminates any DC bias from the ADC output data. The filter is enabled by default. For DC measurements, it can be disabled by writing a ‘1’ to the HPF bit (register 5Ch, bit 3). This high pass filter corner frequency can be selected to have different values in WM9713L, to suit applications such as voice where a higher cutoff frequency is required. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 5Ah 5:4 HPMODE 00 HPF corner frequency 00: 7Hz @ Fs=48kHz 01: 82Hz @ Fs=16kHz 10: 82Hz @ Fs=8kHz 11: 170Hz @ Fs=8kHz Note: the filter corner frequency is proportional to the sample rate. Table 8 ADC Highpass Filter Frequency Control ADC SLOT MAPPING By default, the output of the left audio ADC appears on slot 3 of the SDATAIN signal (pin 8), and the right ADC data appears on slot 4. However, the ADC output data can also be sent to other slots, by setting the ASS (ADC slot select) control bits as shown below. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 1:0 ASS 00 ADC to slot m apping 00: Left = Slot 3, Right = Slot 4 (default) 01: Left = Slot 7, Right = Slot 8 10: Left = Slot 6, Right = Slot 9 11: Left = Slot 10, Right = Slot 11 5Ch Additional Functions (2)
3 HPF 0 High-pass filter disable
0: Filter enabled (for audio) 1: Filter disabled (for DC measurements) Table 9 ADC Control
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 RECORD SELECTOR The record selector determines which input signals are routed into the audio ADC. The left and right channels can be selected independently. This is useful for recording a phone call: one channel can be used for the RX signal and the other for the TX signal, so that both sides of the conversation are digitized. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
6 RECBST 0 20dB Boost
1: Boost ADC input signal by 20dB 0 :No boost 5:3 RECSL 000 Left ADC signal source 000: MICA (pre-PGA) 001: MICB (pre-PGA) 010: LINEL (pre-PGA) 011: MONOIN (pre-PGA) 100: Headphone Mix (left) 101: Speaker Mix 110: Mono Mix 111: Reserved (do not use this setting) 14h Record Routing / Mux Select 2:0 RECSR 000 Right ADC signal source 000: MICA (pre-PGA) 001: MICB (pre-PGA) 010: LINER (pre-PGA) 011: MONOIN (pre-PGA) 100: Headphone Mix (right) 101: Speaker Mix 110: Mono Mix 111: Reserved (do not use this setting) Table 10 Audio Record Selector
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 RECORD GAIN The amplitude of the signal that enters the audio ADC is controlled by the Record PGA (Programmable Gain Amplifier). The PGA gain can be programmed either by writing to the Record Gain register, or by the Automatic Level Control (ALC) circuit (see next section). When the ALC is enabled, any writes to the Record Gain register have no effect. Two different gain ranges can be implemented: the standard gain range defined in the AC’97 standard, or an extended gain range with smaller gain steps. The ALC circuit always uses the extended gain range, as this has been found to result in better sound quality. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 RMU 1 Mute Audio ADC (both channels)
1: Mute (OFF) 0: No Mute (ON)
14 GRL 0 Gain range select (left)
0: Standard (0 to 22.5dB, 1.5dB step size) 1: Extended (-17.25 to +30dB, 0.75dB steps) Record Volume (left) Standard (GRL=0) Extended (GRL=1) 13:8 RECVOLL 000000 XX0000: 0dB XX0001: +1.5dB … (1.5dB steps) XX1111: +22.5dB 000000: -17.25dB 000001: -16.5dB … (0.75dB steps) 111111: +30dB
7 ZC 0 Zero Cross Enable
0: Record Gain changes immediately 1: Record Gain changes when signal is zero or after time-out
6 GRR 0 Gain range select (right)
5:0 RECVOLR 000000 Record Volume (right) Similar to RECVOLR Table 11 Record Gain Register The output of the Record PGA can also be mixed into the phone and/or headphone outputs (see “Audio Mixers”). This makes it possible to use the ALC function for the microphone signal in a smartphone application. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 15:14 R2H 11 (mute) Controls record mux to headphone mixer paths. 00=stereo, 01=left rec mux only, 10=right rec mux only, 11=mute left and right 13:11 R2HVOL 010 (0dB) Controls gain of record mux l/r to headphone mixer paths. 000: +6dB 001: +3dB ... (3dBsteps) 111: -15dB 10:9 R2M 11 (mute) Controls record mux to mono mixer path. 00=stereo, 01=left rec mux only, 10=right rec mux only, 11=mute left and right 14h Record Routing
8 R2MBST 0 (OFF) Enables 20dB gain boost for record mux to
Table 12 Record PGA Routing Control
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 AUTOMATIC LEVEL CONTROL The WM9713L has an automatic level control that aims to keep a constant recording volume irrespective of the input signal level. This is achieved by continuously adjusting the PGA gain so that the signal level at the ADC input remains constant. A digital peak detector monitors the ADC output and changes the PGA gain if necessary. hold time decay time attack time input signal signal after ALC PGA gain ALC target level Figure 11 ALC Operation The ALC function is enabled using the ALCSEL control bits. When enabled, the recording volume can be programmed between –6dB and –28.5dB (relative to ADC full scale) using the ALCL register bits. HLD, DCY and ATK control the hold, decay and attack times, respectively. HOLD TIME Hold time is the time delay between the peak level detected being below target and the PGA gain applies to gain ramp-up, there is no delay before ramping the gain down when the signal level is above target. DECAY (GAIN RAMP-UP) TIME Decay time is the time that it takes for the PGA gain to ramp up across 90% of its range (e.g. from –15B up to 27.75dB). The time it takes for the recording level to return to its target value therefore depends on both the decay time and on the gain adjustment required. If the gain adjustment is small, it will be shorter than the decay time. The decay time can be programmed in power-of-two (2 n) steps, from 24ms, 48ms, 96ms, etc. to 24.58s.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 ATTACK (GAIN RAMP-DOWN) TIME Attack time is the time that it takes for the PGA gain to ramp down across 90% of its range (e.g. from 27.75dB down to –15B gain). The time it takes for the recording level to return to its target value therefore depends on both the attack time and on the gain adjustment required. If the gain adjustment is small, it will be shorter than the attack time. The attack time can be programmed in power-of-two (2 n) steps, from 6ms, 12ms, 24ms, etc. to 6.14s. When operating in stereo, the peak detector takes the maximum of left and right channel peak values, and any new gain setting is applied to both left and right PGAs, so that the stereo image is preserved. However, the ALC function can also be enabled on one channel only. In this case, only one PGA is controlled by the ALC mechanism, while the other channel runs independently with its PGA gain set through the control register. When one ADC channel is unused, the peak detector disregards that channel. The ALC function can also operate when the two ADC outputs are mixed to mono in the digital domain, but not if they are mixed to mono in the analogue domain, before entering the ADCs. ALC ZERO CROSS The ALC has a zero cross detection circuit. When enabled, the PGA gain will be updated when the signal is at zero or after a time out period. This is controlled through the ALC enable ALCZC, register 62h bit 8, and the time out control ZCTIMEOUT, register 62h bit 10:9. The time out signal is a function of the BITCLK period as defined in Table 13.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 15:14 ALCSEL 00 (OFF) ALC function select 00 = ALC off (PGA gain set by register) 01 = Right channel only 10 = Left channel only 11 = Stereo (PGA registers unused) 13:11 MAXGAIN 111 (+30dB) PGA gain limit for ALC 111 = +30dB 110 = +24dB ….(6dB steps) 001 = -6dB 000 = -12dB 10:9 ZCTIMEOUT 11 Programmable zero cross timeout (delay for 12.288MHz BITCLK): 11: 2^17 * tbitclk (10.67 ms) 10: 2^16 * tbitclk (5.33 ms) 01: 2^15 * tbitclk (2.67 ms) 00: 2^14 * tbitclk (1.33 ms) 62h ALC / Noise Gate Control
8 ALCZC 0 ALC Zero Cross enable (overrides ZC
bit in register 12h) 0: PGA Gain changes immediately 1: PGA Gain changes when signal is zero or after time-out 15:12 ALCL 1011 (-12dB) ALC target – sets signal level at ADC input 0000 = -28.5dB FS 0001 = -27.0dB FS … (1.5dB steps) 1110 = -7.5dB FS 1111 = -6dB FS 11:8 HLD 0000 (0ms) ALC hold time before gain is increased. 0000 = 0ms 0001 = 2.67ms 0010 = 5.33ms … (time doubles with every step) 1111 = 43.691s 7:4 DCY 0011 (192ms) ALC decay (gain ramp-up) time 0000 = 24ms 0001 = 48ms 0010 = 96ms … (time doubles with every step) 1010 or higher = 24.58s 60h ALC Control 3:0 ATK 0010 (24ms) ALC attack (gain ramp-down) time 0000 = 6ms 0001 = 12ms 0010 = 24ms … (time doubles with every step) 1010 or higher = 6.14s Table 13 ALC Control MAXIMUM GAIN The MAXGAIN register sets the maximum gain value that the PGA can be set to whilst under the control of the ALC. This has no effect on the PGA when ALC is not enabled.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 PEAK LIMITER To prevent clipping when a large signal occurs just after a period of quiet, the ALC circuit includes a limiter function. If the ADC input signal exceeds 87.5% of full scale (–1.16dB), the PGA gain is ramped down at the maximum attack rate (as when ATK = 0000), until the signal level falls below 87.5% of full scale. This function is automatically enabled whenever the ALC is enabled. (Note: If ATK = 0000, then the limiter makes no difference to the operation o f the ALC. It is designed to prevent clipping when long attack times are used). NOISE GATE When the signal is very quiet and consists mainly of noise, the ALC function may cause “noise pumping”, i.e. loud hissing noise during silence periods. The WM9713L has a noise gate function that prevents noise pumping by comparing the signal level at the input pins (i.e. before the record PGA) against a noise gate threshold, NGTH. Provided that the noise gate function is enabled (NGAT = 1), the noise gate cuts in when: Signal level at ADC [dB] < NGTH [dB] + PGA gain [dB] + Mic Boost gain [dB] This is equivalent to: Signal level at input pin [dB] < NGTH [dB] The PGA gain is then held constant (preventing it from ramping up as it normally would when the signal is quiet). If the NGG bit is set, the ADC output is also muted when the noise gate cuts in. The table below summarises the noise gate control register. The NGTH control bits set the noise gate threshold with respect to the ADC full-scale range. The threshold is adjusted in 1.5dB steps. Levels at the extremes of the range may cause inappropriate operation, so care should be taken with set–up of the function. Note that the noise gate only works in conjunction with the ALC function, and always operates on the same channel(s) as the ALC (left, right, both, or none). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
7 NGAT 0 Noise gate function enable
1 = enable 0 = disable
5 NGG 0 Noise gate type
0 = PGA gain held constant 1 = mute ADC output 62h ALC / Noise Gate Control 4:0 NGTH(4:0) 00000 Noise gate threshold 00000: -76.5dBFS 00001: -75dBFS … 1.5 dB steps 11110: -31.5dBFS 11111: -30dBFS Table 14 Noise Gate Control
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 AUDIO DACS STEREO DAC The WM9713L has a stereo sigma-delta DAC that achieves high quality audio playback at low power consumption. Digital tone control, adaptive bass boost and 3-D enhancement functions operate on the digital audio data before it is passed to the stereo DAC. (Contrary to the AC’97 specification, they have no effect on analogue input signals or signals played through the auxiliary DAC. Nevertheless, the ID2 and ID5 bits in the reset register, 00h, are set to ‘1’ to indicate that the WM9713L supports tone control and bass boost.) The DAC output has a PGA for volume control. The DAC sample rate can be controlled by writing to a control register (see “Variable Rate Audio”). It is independent of the ADC sample rate. When not in use the DACs can be separately powered down using the Powerdown register bits DACL and DACR (register 3Ch, bits [7:6]). STEREO DAC VOLUME The volume of the DAC output signal is controlled by a PGA (Programmable Gain Amplifier). Each DAC can be mixed into the headphone, speaker and mono mixer paths (see “Audio Mixers”) controlled by register 0Ch. Each DAC-to-mixer path has an independent mute bit. When all DAC-to-mixer paths are muted the DAC PGA is muted automatically. When not in use the DAC PGAs can be powered down using the Powerdown register bits DACL and DACR (register 3Ch, bits [7:6]). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 D2H 1 Mute DAC path to headphone mixer
1: Mute, 0: No mute (ON)
14 D2S 1 Mute DAC path to speaker mixer
1: Mute, 0: No mute (ON)
13 D2M 1 Mute DAC path to mono mixer
1: Mute, 0: No mute (ON) 12:8 DACL VOL 01000 (0dB) Left DAC Volume 00000: +12dB … (1.5dB steps) 11111: -34.5dB 0Ch DAC Volume 4:0 DACR VOL 01000 (0dB) Right DAC Volume similar to DACLVOL
15 AMUTE 0 Read-only bit to indicate auto-muting
1: DAC auto-muted 0: DAC not muted 5Ch Additional Functions (2) 7 AMEN 0 DAC Auto-Mute Enable 1: Automatically mutes analogue output of stereo DAC if digital input is zero 0: Auto-mute OFF Table 15 Stereo DAC Volume Control
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 TONE CONTROL / BASS BOOST The WM9713L provides separate controls for bass and treble with programmable gains and filter characteristics. This function operates on digital audio data before it is passed to the audio DACs. Bass control can take two different forms:
- Linear bass control: bass signals are amplified or attenuated by a user programmable gain. This is independent of signal volume, and very high bass gains on loud signals may lead to signal clipping.
- Adaptive bass boost: The bass volume is amplified by a variable gain. When the bass volume is low, it is boosted more than when the bass volume is high. This method is recommended because it prevents clipping, and usually sounds more pleasant to the human ear. Treble control applies a user programmable gain, without any adaptive boost function. Treble, linear bass and 3D enhancement can all produce signals that exceed full-scale. In order to avoid limiting under these conditions, it is recommended to set the DAT bit to attenuate the digital input signal by 6dB. The gain at the outputs should be increased by 6dB to compensate for the attenuation. Cut-only tone adjustment and adaptive bass boost cannot produce signals above full- scale and therefore do not require the DAT bit to be set. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 BB 0 Bass Mode
0 = Linear bass control 1 = Adaptive bass boost
12 BC 0 Bass Cut-off Frequency
0 = Low (130Hz at 48kHz sampling) 1 = High (200Hz at 48kHz sampling) Bass Intensity Code BB=0 BB=1 0000 +9dB 15 (max) 0001 +9dB 14 0010 +7.5dB 13 … (1.5dB steps) … 0111 0dB 8 … (1.5dB steps) … 1011-1101 -6dB 4-2 1110 -6dB 1 (min) 11:8 BASS 1111 (OFF)
1111 Bypass (OFF)
6 DAT 0 -6dB attenuation
0 = Off 1 = On
4 TC 0 Treble Cut-off Frequency
0 = High (8kHz at 48kHz sampling) 1 = Low (4kHz at 48kHz sampling) 20h DAC Tone Control 3:0 TRBL 1111 (Disabled) Treble Intensity 0000 or 0001 = +9dB 0010 = +7.5dB … (1.5dB steps) 1011 to 1110 = -6dB 1111 = Treble Control Disabled Table 16 DAC Tone Control Note: 1. All cut-off frequencies change proportionally with the DAC sample rate.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 3D STEREO ENHANCEMENT The 3D stereo enhancement function artificially increases the separation between the left and right channels by amplifying the (L-R) difference signal in the frequency range where the human ear is sensitive to directionality. The programmable 3D depth setting controls the degree of stereo expansion introduced by the function. Additionally, the upper and lower limits of the frequency range used for 3D enhancement can be selected using the 3DFILT control bits. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 40h General Purpose 13 3DE 0 (disabled) 3D enhancement enable 5 3DLC 0 Lower Cut-off Frequency 0 = Low (200Hz at 48kHz sampling) 1 = High (500Hz at 48kHz sampling) 4 3DUC 0 Upper Cut-off Frequency 0 = High (2.2kHz at 48kHz sampling) 1 = Low (1.5kHz at 48kHz sampling) 1Eh DAC 3D Control 3:0 3DDEPTH 0000 3D Depth 0000: 0% (minimum 3D effect) 0001: 6.67% …(6.67% steps) 1110: 93.3% 1111: 100% (maximum) Table 17 Stereo Enhancement Control Note: 1. All cut-off frequencies change proportionally with the DAC sample rate. VOICE DAC VXDAC is a 16-bit mono DAC intended for playback of Rx voice signals input via the PCM interface. Typically it is used at 8ks/s, but may be used at other sample rates up to 48ks/s. The analogue output of VXDAC is routed directly into the output mixers. The signal gain into each mixer can be adjusted at the mixer inputs using control register 1Eh. When not in use the VXDAC can be powered down using the Powerdown register bit VXDAC (register 3Ch, bit 12).
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 3Ch Powerdown (1)
12 VXDAC 1 VXDAC powerdown bit
1: OFF, 0: ON
15 V2H 1 Mute VXDAC path to headphone
1: Mute, 0: No mute (ON) 14:12 V2HVOL 010 (0dB) VXDAC to headphone mixer gain 000: +6dB … (3dB steps) 111: -15dB
11 V2S 1 Mute VXDAC path to speaker mixer
1: Mute, 0: No mute (ON) 10:8 V2SVOL 010 (0dB) VXDAC to speaker mixer gain 000: +6dB … (3dB steps) 111: -15dB
7 V2M 1 Mute VXDAC path to mono mixer
1: Mute, 0: No mute (ON) 18h VXDAC Output Control 6:4 V2MVOL 010 (0dB) VXDAC to mono mixer gain 000: +6dB … (3dB steps) 111: -15dB Table 18 VXDAC Control AUXILIARY DAC AUXDAC is a simple 12-bit mono DAC. It can be used to generate DC signals (with the numeric input written into a control register), or AC signals such as telephone-quality ring tones or system beeps (with the input signal supplied through an AC-Link slot). In AC mode (XSLE = 1), the input data is binary offset coded; in DC mode (XSLE = 0), there is no offset. The analogue output of AUXDAC is routed directly into the output mixers. The signal gain into each mixer can be adjusted at the mixer inputs using control register 12h. In slot mode (XSLE = 1), the AUXDAC also supports variable sample rates (See “Variable Rate Audio” section). When not in use the auxillary DAC can be powered down using the Powerdown register bit AUXDAC (register 3Ch, bit 11).
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 3Ch Powerdown (1)
11 AUXDAC 0 AUXDAC powerdown
1: OFF, 0: ON
15 XSLE 0 AUXDAC input selection
0: from AUXDACVAL (for DC signals) 1: from AC-Link slot selected by AUXDACSLT (for AC signals) 14:12 AUXDAC SLT
000 AUXDAC Input Selection
000 – Slot 5, bits 8-19 (with XSLE=1) 001 – Slot 6, bits 8-19 (with XSLE=1) 010 – Slot 7, bits 8-19 (with XSLE=1) 011 – Slot 8, bits 8-19 (with XSLE=1) 100 – Slot 9, bits 8-19 (with XSLE=1) 101 – Slot 10, bits 8-19 (with XSLE=1) 110 – Slot 11, bits 8-19 (with XSLE=1) 111 – RESERVED (do not use) 64h AUXDAC Input Control 11:0 AUXDAC VAL 000h AUXDAC Digital Input (with XSLE=0) 000h: minimum FFFh: full-scale
15 A2H 1 Mute AUXDAC path to headphone
1: Mute, 0: No mute (ON) 14:12 A2HVOL 010 (0dB) AUXDAC to headphone mixer gain 000: +6dB … (3dB steps) 111: -15dB
11 A2S 1 Mute AUXDAC path to speaker mixer
1: Mute, 0: No mute (ON) 10:8 A2SVOL 010 (0dB) AUXDAC to speaker mixer gain 000: +6dB … (3dB steps) 111: -15dB
7 A2M 1 Mute AUXDAC path to mono mixer
1: Mute, 0: No mute (ON) 1Ah AUXDAC Output Control 6:4 A2MVOL 010 (0dB) AUXDAC to mono mixer gain 000: +6dB … (3dB steps) 111: -15dB Table 19 AUXDAC Control
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 VARIABLE RATE AUDIO / SAMPLE RATE CONVERSION By using an AC’97 Rev2.2 compliant audio interface, the WM9713L can record and playback at all commonly used audio sample rates, and offer full split-rate support (i.e. the DAC, ADC and AUXDAC sample rates are completely independent of each other – any combination is possible). The default sample rate is 48kHz. If the VRA bit in register 2Ah is set, then other sample rates can be selected by writing to registers 2Ch, 32h and 2Eh. The AC-Link continues to run at 48k frames per second irrespective of the sample rate selected. However, if the sample rate is less than 48kHz, then some frames do not carry an audio sample. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 2Ah Extended Audio Stat/Ctrl
0 VRA 0 (OFF) Variable Rate Audio
0: OFF (DAC and ADC run at 48kHz) 1: ON (sample rates determined by registers 2Ch and 32h) 2Ch Audio DAC Sample Rate 15:0 DACSR BB80h (48kHz) Audio DAC sample rate 1F40h: 8kHz 2B11h: 11.025kHz 2EE0h: 12kHz 3E80h: 16kHz 5622h: 22.05kHz 5DC0h: 24kHz 7D00h: 32kHz AC44h: 44.1kHz BB80h: 48kHz Any other value defaults to the nearest supported sample rate 32h Audio ADC Sample Rate 15:0 ADCSR BB80h (48kHz) Audio ADC sample rate similar to DACSR 2Eh AUXDAC Sample Rate 15:0 AUXDA CSR BB80h (48kHz) AUXDAC sample rate similar to DACSR Table 20 Audio Sample Rate Control
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 AUDIO INPUTS The following sections give an overview of the analogue audio input pins and their function. For more information on recommended external components, please refer to the “Applications Information” section. LINE INPUT The LINEL and LINER inputs are designed to record line level signals, and/or to mix into one of the analogue outputs. Both pins are directly connected to the record selector. The record PGA adjusts the recording volume, controlled by register 12h or by the ALC function. For analogue mixing, the line input signals pass through a separate PGA, controlled by register 0Ah. The signals can be mixed into the headphone, speaker and mono mixer paths (see “Audio Mixers”). Each LINE-to-mixer path has an independent mute bit. When all LINE-to-mixer paths are muted the line PGA is muted automatically. When the line inputs are not used, the line PGA can be switched off to save power (see “Power Management” section). LINEL and LINER are biased internally to the reference voltage VREF. Whenever the inputs are muted or the device placed into standby mode, the inputs remain biased to VREF using special anti- thump circuitry to suppress any audible clicks when changing inputs. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 L2H 1 Mute LINE path to headphone mixer
1: Mute, 0: No mute (ON)
14 L2S 1 Mute LINE path to speaker mixer
1: Mute, 0: No mute (ON)
13 L2M 1 Mute LINE path to mono mixer
1: Mute, 0: No mute (ON) 12:8 LINEL VOL 01000 (0dB) LINEL input gain 00000: +12dB … (1.5dB steps) 11111: -34.5dB 0Ah 4:0 LINER VOL 01000 (0dB) LINER input gain similar to LINELVOL Table 21 Line Input Control Additionally, line inputs can be used as single-ended microphone inputs through the record mux to provide a clickless ALC function by bypassing offset introduced through the microphone pre-amps. Note that the line inputs to the mixers should all be deselected if this is input configuration is used. MICROPHONE INPUT MICROPHONE PRE-AMPS There are two microphone pre-amplifiers which can be configured in a variety of ways to accommodate up to 3 selectable differential microphone inputs or 2 differential microphone inputs for stereo or noise cancellation. The microphone input circuit is shown in Figure 12.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 MIC1 MIC2A MICCM MIC2B Vmid Vmid Vmid 22h:11-10 00 = +12dB 11 = +30dB 22h:9-8 00 = +12dB 11 = +30dB 22h: 13-12 MICA MICB Figure 12 Microphone Input Circuit The input pins used for the microphones are MIC1, MICCM, MIC2A and MIC2B. Note that input pins MIC2A and MIC2B are multi-function inputs and must be configured for use as microphone inputs when required. This is achieved using MICCM PSEL[1:0] in register 22h (see Table 22). The input to microphone pre-amp A can be selected from any of the three microphone inputs MIC1, MIC2A and MIC2B using MPASEL[1:0]. Each pre-amp has i ndependent boost control from +12dB to +30dB in four steps. This is controlled by MPABST[1:0] and MPBBST[1:0]. When not in use each microphone pre-amp can be powered down using the Powerdown register bits MPA and MPB (register 3Eh, bits [1:0]). When disabled the inputs are tied to Vmid (for MIC2A and MIC2B this only applies when they are selected as microphone inputs, otherwise they are left floating). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 15:14 MICCMPSEL 00 MIC2A and MIC2B pin configuration 00: MIC2A and MIC2B microphone inputs 01: MIC2A only 10: MIC2B only 11: neither 13:12 MPASEL 00 MICA pre-amp input select 00 : MIC1 01 : MIC2A 10 : MIC2B 11 : unused (do not select) 11:10 MPABST 00 MICA pre-amp gain control 00 : +12dB 01 : +18dB 10 : +24dB 11 : +30dB 22h 9:8 MPBBST 00 MICB pre-amp gain control 00 = +12dB 01 = +18dB 10 = +24dB 11 = +30dB Table 22 Microphone Pre-amp Control
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 SINGLE MIC OPERATION Up to three microphones can be connected in a single-ended configuration. Any one of the three MICs can be selected as the input to MPA using M PASEL[1:0] (Register 22h, bits 13:12). Only the microphone on MIC2B can be selected to MPB. Note that MPABST always sets the gain for the selected MPA input microphone. If MIC2B is the selected input for MPA it is recommended that MPB is disabled. DUAL MIC OPERATION Up to two microphones can be connected in a dual differential configuration. This is suitable for stereo microphone or noise cancellation applications. Mic1 is connected between the MIC2A and MICCM inputs and mic2 is connected between the MIC2B and MICCM inputs as shown in Figure 13. Additionally, another microphone can be supported on MIC1 selected through the MPA input mux. Note that the microphones can be connected in a single-ended configuration. Figure 13 Dual Microphone Configuration MICROPHONE BIASING CIRCUIT The MICBIAS output provides a low noise reference voltage suitable for biasing electret type microphones and the associated external resistor biasing network. Refer to the Applications Information section for recommended external components. The MICBIAS voltage can be altered via MBVOL in register 22h. When MBVOL=0, MICBIAS=0.9*AVDD and when MBVOL=1, MICBIAS=0.75*AVDD.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 The microphone bias is driven to a dedicated MICBIAS pin 28 and is enabled by MPOP1EN in register 22h. It can also be configured to drive out on GPIO8 pin 12 enabled by MPOP2EN in register 22h. When not in use the microphone bias can be powered down using the Powerdown register bit MICBIAS (register 3Eh, bit 14). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
7 MBOP2EN 0 (Off) Microphone bias enable to GPIO8 (pin 12)
6 MBOP1EN 0 (Off) Microphone bias enable to MICBIAS (pin 28)
5 MBVOL 0 Microphone bias voltage control
0: 0.9 * AVDD 1: 0.75 * AVDD Table 23 Microphone Bias Voltage Control The internal MICBIAS circuitry is shown in Figure 14. Note that the maximum source current capability for MICBIAS is 3mA. The external biasing resistors therefore must be large enough to limit the MICBIAS current to 3mA. Figure 14 Microphone Bias Schematic MICBIAS CURRENT DETECT The WM9713L includes a microphone bias current detect circuit which allows the user to set thresholds for the microphone bias current, above which an interrupt will be triggered. There are two separate interrupt bits, MICDET to allow the user to e.g. distinguish between one or two microphones connected to the WM9713L, and MICSHT to detect a shorted microphone (mic button press). The microphone current detect threshold is set by MCDTHR[2:0], for MICDET, and MCDSCTHR[1:0] for MICSHT. Thresholds for each code are shown in Table 24 When not in use the microphone bias current detect circuit can be powered down using the Powerdown register bit MCD (register 3Eh, bit 15). See the GPIO and Interrupt Controller sections for details on the interrupt and status readback for the microphone bias current detect & microphone short circuit detect.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 4:2 MCDTHR 000 Mic current detect threshold 000:100uA 001:200uA ….100uA steps up to 111:800uA These values are for 3.3V supply and scale with supply voltage (AVDD). 22h 1:0 MCDSCTR 00 Mic current detect short circuit threshold 00: 600uA 01: 1200uA 10: 1800uA 11: 2400uA These values are for 3.3V supply and scale with supply voltage (AVDD). Table 24 Microphone Current Detect Control MICROPHONE PGAS The microphone pre-amps MPA and MPB drive into two microphone PGAs whose gain is controlled by register 0Eh. The PGA signals can be routed into the headphone mixers and the mono mixer, but not the speaker mixer (to prevent forming a feedback loop) controlled by register 10h. When the PGA signals are not selected as an input to any of the mixers the outputs of the PGAs are muted automatically. When not in use the microphone PGAs can be powered down using the Powerdown register bits MA and MB (register 3Eh, bits [3:2]). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 12:8 MICAVOL 01000 (0dB) MICA input gain 00000: +12dB … (1.5dB steps) 11111: -34.5dB 0Eh Mic PGA Volume 4:0 MICBVOL 01000 (0dB) MICB input gain 00000: +12dB … (1.5dB steps) 11111: -34.5dB Table 25 Microphone PGA Volume Control REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
7 MA2M 1 Mute MICA path to mono mixer
1: Mute, 0: No mute (ON)
6 MB2M 1 Mute MICB path to mono mixer
1: Mute, 0: No mute (ON)
5 MIC2MBST 0 Mic to mono mixer boost
0: 0dB, 1: +20dB 4:3 MIC2H 11 Mic to headphone mixers select 00: MICA and MICB 01: MICA only 10: MICB only 11: none (mutes microphone PGAs) 10h MIC Routing 2:0 MIC2HVOL 010 (0dB) Mic PGA to headphone mixers gain 000: +6dB … (3dB steps) 111: -15dB Table 26 Microphone PGA Routing Control
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 MONOIN INPUT Pin 20 (MONOIN) is a mono input designed to connect to the receive path of a telephony device.The pin connects directly to the record selector for phone call recording (Note: to record both sides of a phone call, one ADC channel should record the MONOIN signal while the other channel records the MIC signal). The record PGA adjusts the recording volume, and is controlled by register 12h or by the ALC function (see “Record Gain” and “Automatic Level Control” sections). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 15:14 R2H 11 (mute) Controls record mux to headphone mixer paths. 00=stereo, 01=left rec mux only, 10=right rec mux only, 11=mute left and right 13:11 R2HVOL 010 (0dB) Controls gain of record mux l/r to headphone mixer paths 000: +6dB … (3dB steps) 111: -15dB 10:9 R2M 11 (mute) Controls record mux to mono mixer path. 00=stereo, 01=left rec mux only, 10=right rec mux only, 11=mute left and right 14h Record Routing Table 27 Record PGA Routing Control To listen to the MONOIN signal, the signal passes through a separate PGA, controlled by register 08h. The signal can be routed into the headphone mixer (for normal phone call operation) and/or the speaker mixer (for speakerphone operation), but not into the mono mixer (to prevent forming a feedback loop). When the signal is not selected as an input to any of the mixers the output of the PGA is muted automatically. When not in use the MONOIN PGA can be powered down using the Powerdown register bit MOIN (register 3Eh, bit 4). MONOIN is biased internally to the reference voltage VREF. Whenever the input is muted or the device placed into standby mode, the input remains biased to VREF using special anti-thump circuitry to suppress any audible clicks when changing inputs. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 M2H 1 Mute MONIN path to headphone mixer
1: Mute, 0: No mute (ON)
14 M2S 1 Mute MONOIN path to speaker mixer
1: Mute, 0: No mute (ON) 08h MONOIN PGA Vol / Routing 12:8 MONOIN VOL 01000 (0dB) MONOIN input gain 00000: +12dB … (1.5dB steps) 11111: -34.5dB Table 28 Mono PGA Control PCBEEP INPUT Pin 19 (PCBEEP) is a mono, line level input intended for externally generated signal or warning tones. It is routed directly to the record selector and all three output mixers, without an input amplifier. The signal gain into each mixer can be independently controlled, with a separate mute bit for each signal path.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 PCBEEP is biased internally to the reference volt age VREF. When the signal is not selected as an input to any of the mixers the input remains biased to VREF using special anti-thump circuitry to suppress any audible clicks when changing inputs. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 B2H 1 Mute PCBEEP path to headphone mixer
1: Mute, 0: No mute (ON) 14:12 B2HVOL 010 (0dB) PCBEEP to headphone mixer gain 000: +6dB … (3dB steps) 111: -15dB
11 B2S 1 Mute PCBEEP path to s peaker mixer
1: Mute, 0: No mute (ON) 10:8 B2SVOL 010 (0dB) PCBEEP to speaker mixer gain 000: +6dB … (3dB steps) 111: -15dB
7 B2M 1 Mute PCBEEP path to mono mixer
1: Mute, 0: No mute (ON) 16h PCBEEP input 6:4 B2MVOL 010 (0dB) PCBEEP to mono mixer gain 000: +6dB … (3dB steps) 111: -15dB Table 29 PCBEEP Control DIFFERENTIAL MONO INPUT PCBEEP and MONOIN inputs can be configured to provide a differential mono input. This is achieved by mixing the two inputs together using the headphone mixers or the speaker mixer. Note that the gain of the MONOIN PGA must match the gain of the PCBEEP mixer i nput to achieve a balanced differential mono input.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 AUDIO MIXERS MIXER OVERVIEW The WM9713L has four separate low-power audio mixers to cover all audio functions required by smartphones, PDAs and handheld computers. These mixers are used to drive the audio outputs HPL, HPR, MONO, SPKL, SPKR, OUT3 and OUT4. There are also two inverters used to provide complementary output driver signals. HEADPHONE MIXERS There are two headphone mixers, headphone mixer left and headphone mixer right (HPMIXL and HPMIXR). These mixers are the stereo output driver source. They are used to drive the stereo outputs HPL and HPR. They can also be used to drive SPKL and SPKR outputs and, when used in conjunction with OUT3 and OUT4, they can be configured to drive complementary signals through the two output inverters to support bridge-tied load (BTL) stereo loudspeaker outputs. The following signals can be mixed into the headphone path:
- MONOIN (controlled by register 08h, see “Audio Inputs”)
- LINEL/R (controlled by register 0Ah, see “Audio Inputs”)
- the output of the Record PGA (controlled by register 14h, see “Audio ADC”, “Record Gain”)
- the stereo DAC signal (controlled by register 0Ch, see “Audio DACs”)
- the MIC signal (controlled by register 10h, see “Audio Inputs”)
- PC_BEEP (controlled by register 16h, see “Audio Inputs”)
- the VXDAC signal (controlled by register 18h, see “Audio DACs”)
- the AUXDAC signal (controlled by register 1Ah, see “Auxiliary DAC”) In a typical smartphone application, the headphone signal is a mix of MONOIN / VXDAC and sidetone (for phone calls) and the stereo DAC signal (for music playback). When not in use the headphone mixers can be powered down using the Powerdown register bits HPLX and HPRX (register 3Ch, bits [3:2]). SPEAKER MIXER The speaker mixer (SPKMIX) is a mono source. It is typically used to drive a mono loudspeaker in BTL configuration. The following signals can be mixed into the speaker path:
- MONOIN (controlled by register 08h, see “Audio Inputs”)
- LINEL/R (controlled by register 0Ah, see “Audio Inputs”)
- the stereo DAC signal (controlled by register 0Ch, see “Audio DACs”)
- PC_BEEP (controlled by register 16h, see “Audio Inputs”)
- the VXDAC signal (controlled by register 18h, see “Audio DACs”)
- the AUXDAC signal (controlled by register 1Ah, see “Auxiliary DAC”) In a typical smartphone application, the speaker signal is a mix of AUXDAC (for system alerts or ring tone playback), MONOIN / VXDAC (for speakerphone function), and PC_ BEEP (for externally generated ring tones). Note that when selected the stereo input pairs LINEL/R and DACL/R are summed and attenuated by -6dB so that 0dBFS signals on each channel sum to give a stereo mixed 0dBFS output. When not in use the speaker mixer can be powered down using the Powerdown register bit SPKX (register 3Ch, bit 1).
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 MONO MIXER The mono mixer drives the MONO pin. The following signals can be mixed into MONO:
- LINEL/R (controlled by register 0Ah, see “Audio Inputs”)
- the output of the Record PGA (controlled by register 14h, see “Audio ADC”, “Record Gain”)
- the stereo DAC signal (controlled by register 0Ch, see “Audio DACs”)
- the MIC signal (controlled by register 10h, see “Audio Inputs”)
- PC_BEEP (controlled by register 16h, see “Audio Inputs”)
- the VXDAC signal (controlled by register 18h, see “Audio DACs”)
- the AUXDAC signal (controlled by register 12h, see “Auxiliary DAC”) In a typical smartphone application, the MONO signal is a mix of the amplified microphone signal (possibly with Automatic Gain Control) and (if enabled) an audio playback signal from the stereo DAC or the auxiliary DAC. Note that when selected the stereo input pairs LINEL/R and DACL/R are summed and attenuated by -6dB so that 0dBFS signals on each channel sum to give a stereo mixed 0dBFS output. When not in use the mono mixer can be powered down using the Powerdown register bit MX (register 3Ch, bit 0). MIXER OUTPUT INVERTERS There are two general purpose mixer output inverters, INV1 and INV2. Each inverter can be selected to drive HPMIXL, HPMIXR, SPKMIX, MONOMIX or { ( HPMIXL + HPMIXR ) / 2 }. The outputs of the inverters can be used to generate complimentary signals (to drive BTL configured loads) and to provide greater flexibility in output driver configurations. INV1 can be selected as the source for SPKL, MONO and OUT3 and INV2 as the source for SPKR and OUT4. The input source for each inverter is selected using INV1[2:0] and INV2[2:0] in register 1Eh (see Table 30). When no input is selected the inverter is powered down. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 15:13 INV1 000 (OFF) INV1 source select 000: ZH (OFF – no source selected) 001: MONOMIX 010: SPKMIX 011: HPMIXL 100: HPMIXR 101: HPMIXMONO 110: unused 111: Vmid 1Eh 12:10 INV2 000 (OFF) INV2 source select Same as INV1 Table 30 Mixer Inverter Source Select
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 ANALOGUE AUDIO OUTPUTS The following sections give an overview of the analogue audio output pins. The WM9713L has three outputs capable of driving loads down to 16 Ω (headphone / line drivers) – HPL, HPR and MONO - and four output capable of driving loads down to 8 Ω (loudspeaker / line drivers) – SPKL, SPKR, OUT3 and OUT4. The combination of output drivers, mixers and mixer inverters means that many output configurations can be supported. For examples of typical output and mixer configurations please refer to the “Typical Output Configurations” section. For more information on recommended external components, please refer to the “Applications Information” section. Each output is driven by a PGA with a gain range of 0dB to -46.5dB in -1.5dB steps. Each PGA has an input source mux, mute and zero-cross detect circuit (delaying gain changes until a zero-cross is detected, or after time-out). HEADPHONE OUTPUTS – HPL AND HPR The HPL and HPR outputs (pins 39 and 41) are designed to drive a 16 Ω or 32Ω headphone load. They can also be used as line outputs. They can be used in and AC coupled or DC coupled (capless) configuration. The available input sources are HPMIXL/R and Vmid (see Table 31). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 7:6 HPL 00 (Vmid) HPL input source select 00: Vmid 01: no i/p (Z H if buffer disabled) 10: HPMIXL 11: unused 1Ch Output PGA Mux Select 5:4 HPR 00 (Vmid) HPR input source select 00: Vmid 01: no i/p (Z H if buffer disabled) 10: HPMIXR 11: unused Table 31 HPL / HPR PGA Input Source The signal volume on HPL and HPR can be independently adjusted under software control by writing to register 04h. When not in use HPL and HPR can be powered down using the Powerdown register bits HPL and HPR (register 3Eh, bits [10:9]). To minimise pops and clicks when the PGA is powered down / up it is recommended that the Vmid input is selected during the power down / up cycle. This ensures the same DC level is maintained on the output pin throughout.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 MUL 1 (Mute) Mute HPL
1: Mute (OFF) 0: No Mute (ON)
14 ZCL 0 Left zero cross enable
0: Change gain immediately 1: Change gain only on zero crossings, or after time-out 13:8 HPLVOL 000000 (0dB) HPL Volume 000000: 0dB (maximum) 000001: -1.5dB … (1.5dB steps) 011111: -46.5dB 1xxxxx: -46.5dB
7 MUR 1 (Mute) Mute HPR
1: Mute (OFF) 0: No Mute (ON)
6 ZCR 0 Right zero cross enable
0: Change gain immediately 1: Change gain only on zero crossings, or after time-out 04h Headphone Volume 5:0 HPRVOL 00000 (0dB) HPR Volume Similar to HPLVOL Table 32 HPL / HPR PGA Control MONO OUTPUT The MONO output (pin 31) is designed to drive a 16 Ω headphone load and can also be used as a line outputs. The available input sources are MONOMIX, INV1 and Vmid (see Table 33) REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 1Ch Output PGA Mux Select 15:14 MONO 00 (Vmid) MONO input source select 00: Vmid 01: no i/p (ZH if buffer disabled) 10: MONOMIX 11: INV1 Table 33 MONO PGA Input Source The signal volume on MONO can be independently adjusted under software control by writing to register 08h. When not in use MONO can be powered down using the Powerdown register bit MONO (register 3Eh, bit 13). To minimise pops and clicks when the PGA is powered down / up it is recommended that the Vmid input is selected during the power down / up cycle. This ensures the same DC level is maintained on the output pin throughout.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
7 MU 1 (Mute) Mute MONO
1: Mute (OFF) 0: No Mute (ON)
6 ZC 0 Right zero cross enable
0: Change gain immediately 1: Change gain only on zero crossings, or after time-out 08h MONO Vol 5:0 MONOVOL 000000 (0dB) MONO Volume 000000: 0dB (maximum) 000001: -1.5dB … (1.5dB steps) 011111: -46.5dB 1xxxxx: -46.5dB Table 34 Mono PGA Control SPEAKER OUTPUTS – SPKL AND SPKR The SPKL and SPKR (pins 35 and 36) are designed to drive a loudspeaker load down to 8Ω and can also be used as line outputs and headphone outputs. They are designed to drive an 8 Ω load AC coupled or in a BTL (capless) configuration. The available input sources are HPMIXL/R, SPKMIXL/R, INV1/2 and Vmid (see Table 35). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 13:11 SPKL 000 (Vmid) SPKL input source select 000: Vmid 001: no i/p (ZH if buffer disabled) 010: HPMIXL 011: SPKMIX 100: INV1 101-111: unused 1Ch Output PGA Mux Select 10:8 SPKR 000 (Vmid) SPKR input source select 000: Vmid 001: no i/p (Z H if buffer disabled) 010: HPMIXR 011: SPKMIX 100: INV2 101-111: unused Table 35 SPKL / SPKR PGA Input Source The signal volume on SPKL and SPKR can be i ndependently adjusted under software control by writing to register 02h. When not in use SPKL and SPKR can be powered down using the Powerdown register bits SPKL and SPKR (register 3Eh, bits [8:7]). To minimise pops and clicks when the PGA is powered down / up it is recommended that the Vmid input is selected during the power down / up cycle. This ensures the same DC level is maintained on the output pin throughout.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 MUL 1 (Mute) Mute SPKL
1: Mute (OFF) 0: No Mute (ON) 0: Change gain immediately 1: Change gain only on zero crossings, or after time-out 13:8 SPKLVOL 000000 (0dB) SPKL Volume 000000: 0dB (maximum) 000001: -1.5dB … (1.5dB steps) 011111: -46.5dB 1xxxxx: -46.5dB
7 MUR 1 (Mute) Mute SPKR
1: Mute (OFF) 0: No Mute (ON) 0: Change gain immediately 1: Change gain only on zero crossings, or after time-out 02h Speaker Volume 5:0 SPKRVOL 00000 (0dB) SPKR Volume Similar to SPKLVOL Table 36 SPKL / SPKR PGA Control Note: 1. For BTL speaker drive, it is recommended that both PGAs have the same gain setting. AUXILLARY OUTPUTS – OUT3 AND OUT4 The OUT3 and OUT4 outputs (pins 37 and 33) are designed to drive a loudspeaker load down to 8 Ω and can also be used as line outputs and headphone outputs. They are designed to drive an 8Ω load AC coupled or in a BTL (capless) configuration and can be used as a midrail buffer to drive the headphone outputs in a capless DC configuration. The available input sources are INV1/2 and Vmid (see Table 37). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 3:2 OUT3 00 (Vmid) OUT3 input source select 00: Vmid 01: no i/p (Z H if buffer disabled) 10: INV1 11: unused 1Ch Output PGA Mux Select 1:0 OUT4 00 (Vmid) OUT4 input source select 00: Vmid 01: no i/p (Z H if buffer disabled) 10: INV2 11: unused Table 37 OUT3 / OUT4 PGA Input Source The signal volume on OUT3 and OUT4 can be independently adjusted under software control by writing to register 06h. When not in use OUT3 and OUT4 can be powered down using the Powerdown register bits OUT3 and OUT4 (register 3Eh, bits [11:12]). To minimise pops and clicks when the PGA is powered down / up it is recommended that the Vmid input is selected during the power down / up cycle. This ensures the same DC level is maintained on the output pin throughout.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 MU4 1 (Mute) Mute OUT4
1: Mute (OFF) 0: No Mute (ON)
14 ZC4 0 OUT4 zero cross enable
0: Change gain immediately 1: Change gain only on zero crossings, or after time-out 13:8 OUT4VOL 000000 (0dB) OUT4 Volume 000000: 0dB (maximum) 000001: -1.5dB … (1.5dB steps) 011111: -46.5dB 1xxxxx: -46.5dB
7 MU3 1 (Mute) Mute OUT3
1: Mute (OFF) 0: No Mute (ON)
6 ZC3 0 OUT3 zero cross enable
0: Change gain immediately 1: Change gain only on zero crossings, or after time-out 06h Speaker Volume 5:0 OUT3VOL 00000 (0dB) OUT3 Volume Similar to OUT4VOL Table 38 OUT3 / OUT4 PGA Control THERMAL SENSOR The speaker and headphone outputs can drive very large currents. To protect the WM9713L from becoming too hot, a thermal sensor has been built in. If the chip temperature reaches approximately 150°C, and the ENT bit is set, the WM9713L deasserts GPIO bit 11 in register 54h, a virtual GPIO that can be set up to generate an interrupt to the CPU (see “GPIO and Interrupt Control” section). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 3Ch 13 TSHUT 1 Power down thermal sensor 0: Enabled 1: Disabled 54h 11 TI 0 Thermal sensor (virtual GPIO) 1: Temperature below 150°C 0: Temperature above 150°C See also “GPIO and Interrupt Control” section. Table 39 Thermal Cutout Control JACK INSERTION AND AUTO-SWITCHING In a phone application, a BTL ear speaker may be connected across MONO and HPL, a stereo headphone on HPL and HPR and stereo speakers on SPKL, SPKR, OUT3 and OUT4 (see Figure 15). Typically, only one of these three output devices is used at any given time: when no headphone is plugged in, the BTL ear speaker or stereo speakers are active, otherwise the headphone is used.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 Figure 15 Typical Output Configuration The presence of a headphone can be detected using one of GPIO1/6/7/8 (pins 44, 3, 11 & 12) and an external pull-up resistor (see “Applications Information” section for a circuit diagram). When the jack is inserted the GPIO is pulled low by a switch on the socket. When the jack is removed the GPIO is pulled high by a resistor. If the JIEN bit is set, the WM9713L automatically switches between headphone and any other output configuration, typically ear speaker or stereo speaker that has been set up in the Powerdown and Output PGA Mux Select registers. Note: The GPIO polarity can be inverted by setting register 4Eh. In addition to the typical configuration explained above the WM9713L can also support automatic switching between the following three configurations set as BTL ear speaker and headphone. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 24h Output Volume Mapping (Jack Insert) 1:0 EARSPKSEL 00 00: Default, no ear s peaker configuration selected. 01: MONO and HPL driver selected as BTL ear speaker. 10: OUT3 and HPL driver selected as BTL ear speaker. 11: OUT4 and HPL driver selected as BTL ear speaker. Table 40 Ear Speaker Configuration For example if OUT4 and HPL is selected as the BTL ear speaker, the user should select EARSPKSEL = 3h, t hen OUT4 is tri-stated on jack insert to prevent sound across the ear speaker during headphone operation and HPL volume is set to OUT4 volume on jack out to ensure correct ear speaker operation. It should be noted that all other outputs except HPL, HPR and selected ear speaker driver are disabled and internally connected to VREF on jack insert. This maintains VREF at those outputs and helps prevent pops when the outputs are enabled. Finally if the user wishes to DC couple the headphone outputs the user needs to select between OUT3 and OUT4 as the mid-rail output buffer driver. The selected mid-rail output buffer is enabled on jack insert. On jack out it defaults to whatever configuration has been set up in the Powerdown and Output PGA Mux Select registers.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 24h Output Volume Mapping (Jack Insert) 3:2 DCDRVSEL 00 00: Default, AC c oupled headphone. 01: OUT4 as mid-rail output buffer. 11: OUT3 as mid-rail output buffer. Table 41 DC Coupled Headphone Configuration In summary: JIEN not set: Outputs work as normal as selected in the Powerdown and Output PGA Mux Select registers. JIEN set: On jack insert GPIO1/6/7/8 is pulled low, HPL and HPR are enabled, DCDR VSEL decides if the headphones are DC or AC coupled and configures OUT3 or OUT4 to suit, EARSPKSEL decides if MONO, OUT3 or OUT4 need to be tri-stated to ensure no sound out on the ear-speaker and finally all other outputs are disabled as explained above to prevent pops on re-enabling. On jack out GPIO1/6/7/8 is pulled high, the outputs work as normal as selected in the Powerdown and Output PGA Mux Select registers except that HPL Volume is controlled by EAR SPKSEL to ensure correct ear speaker operation. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 24h Output Volume Mapping (Jack Insert)
4 JIEN 0 (OFF) Jack Insert Enable – Takes output of GPIO1
(1) 7:6 JSEL 00 (GPIO1) GPIO select for jack insert detection: 00: GPIO1 01: GPIO6 10: GPIO7 11: GPIO8 Table 42 Jack Insertion / Auto-Switching (1)
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 JIEN EARSPKSEL DCDRVSEL GPIO1 MODE DESCRIPTION HPL STATE HPL VOLUME HPR STATE HPR VOLUME MONO STATE OUT3 STATE OUT4 STATE SPKL STATE SPKR STATE
0 XX XX X Jack Insert Detection
Disabled. User Controlled User Controlled User Controlled User Controlled User Controlled User Controlled User Controlled User Controlled User Controlled 1 00 00 0 Jack Insert Detection Enabled. Headphone plugged in. No Ear Speaker Selected. AC Coupled Headphone Selected. Enabled HPL Volume Enabled HPR Volume HZ HZ HZ HZ HZ 1 01 00 0 Jack Insert Detection Enabled. Headphone plugged in. MONO Ear Speaker Selected. AC Coupled Headphone Selected. Enabled HPL Volume Enabled HPR Volume Tri-Stated HZ HZ HZ HZ 1 10 00 0 Jack Insert Detection Enabled. Headphone plugged in. OUT3 Ear Speaker Selected. AC Coupled Headphone Selected. Enabled HPL Volume Enabled HPR Volume HZ Tri-Stated HZ HZ HZ 1 11 00 0 Jack Insert Detection Enabled. Headphone plugged in. OUT4 Ear Speaker Selected. AC Coupled Headphone Selected. Enabled HPL Volume Enabled HPR Volume HZ HZ Tri-Stated HZ HZ 1 11 01 0 Jack Insert Detection Enabled. Headphone plugged in. OUT4 Ear Speaker Selected. OUT3 DC Coupled Headphone Selected. Enabled HPL Volume Enabled HPR Volume HZ VMID Tri-Stated HZ HZ 1 00 XX 1 Jack Insert Detection Enabled. Headphone plugged out. No Ear Speaker Selected. User Controlled User Controlled User Controlled User Controlled User Controlled User Controlled User Controlled User Controlled User Controlled 1 11 XX 1 Jack Insert Detection Enabled. Headphone plugged out. OUT4 Ear Speaker Selected. User Controlled OUT4 Volume User Controlled User Controlled User Controlled User Controlled User Controlled User Controlled User Controlled Table 43 Jack Insertion / Auto-Switching (2)
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 DIGITAL AUDIO (SPDIF) OUTPUT The WM9713L supports the SPDIF standard. Pins 48 & 12 can be used to output the SPDIF data. Note that pins 48 & 12 can also be used as GPIO pins. The GE5 & GE8 bits (register 56h, bit 5 & bit 8) select between GPIO and SPDIF functionality for pins 48 & 12 respectively (see “GPIO and Interrupt control” section). Register 3Ah is a read/write register that controls SPDIF functionality and manages bit fields propagated as channel status (or sub-frame in the V case). With the exception of V, this register should only be written to when the SPDIF transmitter is disabled (SPDIF bit in register 2Ah is ‘0’). Once the desired values have been written to this register, the contents should be read back to ensure that the sample rate in particular is supported, then SPDIF validity bit SPCV in register 2Ah should be read to ensure the desired configuration is valid. Only then should the SPDIF enable bit in register 2Ah be set. This ensures that control and status information start up correctly at the beginning of SPDIF transmission. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
10 SPCV 0 SPDIF validity bit (read-only)
5:4 SPSA 01 SPDIF slot assignment (ADCO = 0) 00: Slots 3, 4 01: Slots 6, 9 10: Slots 7, 8 11: Slots 10, 11 2Ah Extended Audio
2 SEN 0 SPDIF output enable
1 = enabled, 0 = disabled
15 V 0 Validity bit; ‘0’ indicates frame valid, ‘1’
14 DRS 0 Indicates that the WM9713L does not support
double rate SPDIF output (read-only) 13:12 SPSR 10 Indicates that the WM9 713L only supports 48kHz sampling on the SPDIF output (read- only)
11 L 0 Generation level; programmed as required by
10:4 CC 0000000 Category code; programmed as required by user
3 PRE 0 Pre-emphasis; ‘0’ indicates no pre-emphasis,
‘1’ indicates 50/15us pre-emphasis
2 COPY 0 Copyright; ‘0’ indicates copyright is not
asserted, ‘1’ indicates copyright
1 AUDIB 0 Non-audio; ‘0’ indicates data is PCM, ‘1’
indicates non-PCM format (e.g. DD or DTS) 3Ah SPDIF Control Register
0 PRO 0 Professional; ‘0’ indicates consumer, ‘1’
4 ADCO 0 Source of SPDIF data
0: SPDIF data comes from SDATAOUT (pin 5), slot selected by SPSA 1: SPDIF data comes from audio ADC Table 44 SPDIF Output Control
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 TOUCHPANEL INTERFACE The WM9713L includes a touchpanel driver and digitiser circuit for use with 4-wire or 5-wire resistive touchpanels. The following functions are implemented: X co-ordinate measurement Y co-ordinate measurement Pen down detection, with programmable sensitivity Touch pressure measurement (4-wire touchpanel only) Auxiliary measurement from COMP1/AUX1 (pin 29), COMP2/AUX2 (pin 30), BMON/AUX3 (pin 31), or WIPER/AUX4 (pin 12) The touchpanel digitiser uses a very low power, 12-bit successive approximation type ADC. The same ADC can also be used for battery and auxiliary measurements (see the “Battery Alarm and Battery Measurement” and “Auxiliary ADC Inputs” sections). An on-chip switch matrix connects each touchpanel terminal to the supply voltage TPVDD, to ground (TPGND), or to the ADC input, as required. Figure 16 Touchpanel Switch Matrix PRINCIPLE OF OPERATION - FOUR-WIRE TOUCHPANEL Four-wire touchpanels are connected to the WM9713L as follows:
- Right side contact = X+ (pin 14)
- Left side contact = X- (pin 16)
- Top side contact = Y+ (pin 15)
- Bottom side contact = Y- (pin 17) The principle of operation is illustrated below (Note: the illustrations assume that the top plate is used for X and the bottom plate for Y measurements, although the reverse is also possible).
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 Pen down detection uses a zero power comparator (effectively a CMOS logic gate) with an internal, programmable pull-up resistor R PU that controls pen-down sensitivity. Increasing R PU makes the touchpanel less sensitive to touch, while lowering RPU makes it more sensitive. When the touchpanel is not being touched, no current flows in the circuit, and the PENDOWN signal is low. When the panel is touched with a pen or finger, current flows through R PU and the panel, and the comparator output goes high. The PENDOWN signal can be read from bit 15 in register 7Ah (labeled PNDN). It can also be observed on pin 46 (GPIO3 / PENDOWN), if the pin is not used for GPIO (GE3=0). Additionally, PENDOWN is passed to the GPIO logic block (register 54h, bit 13), where it can generate CPU interrupts, and / or to wake up the WM9713L from sleep mode (see “GPIO and Interrupt Control” section). Figure 20 Touch Pressure Measurement on 4-wire Touchpanel Touch pressure can be determined indirectly by measuring the contact resistance R C between the top and bottom plates. R C decreases as the touch pressure on the panel increases. The WM9713L measures RC by sending a constant current I P through the touchpanel and measuring the potential on each plate. The two values are subtracted in the digital domain to obtain the potential difference, which is proportional to RC. To suit different types of touchpanels, the magnitude of I P can be set to either 400µA or 200µA using the PIL control bit. PRINCIPLE OF OPERATION - FIVE-WIRE TOUCHPANEL Five-wire touchpanels are connected to the WM9713L as follows: Top sheet contact = WIPER/AUX4 (pin 12) Top left corner of bottom sheet = TL (pin 16) Top right corner of bottom sheet = TR (pin 15) Bottom left corner of bottom sheet = BL (pin 17) Bottom right corner of bottom sheet = BR (pin 14)
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 Figure 23 Pen Down Detection on 5-wire Touchpanel Pen down detection works in a similar fashion for both 4-wire and 5-wire touchpanels (see Four-Wire Touchpanel Operation). On a 5-wire touchpanel, all four contacts of the bottom plate are grounded, and the top plate contact is connected to the internal programmable pull-up resistor, R PU. CONTROLLING THE TOUCHPANEL DIGITISER All touchpanel functions are accessed and controlled through the AC-Link interface. PHYSICAL CHARACTERISTICS The physical characteristics of the touchpanel interface are controlled through register 78h, as shown below. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 12 45W 0 (4-wire) Touchpanel Type Selection 0: 4-wire 1: 5-wire
8 PIL 0 (200 µA) Current used for pressure measurement
0: IP = 200µA 1: IP = 400µA 78h 0:5 RPU 000001 (64kΩ) Internal Pull-up resistor for Pen Detection 111111: 64kΩ/63 = 1.02kΩ (least sensitive) 111110: 64KΩ/62 = 1.03KΩ … (pull-up = 64kΩ / binary value of RPU) 000010: 64KΩ/2 = 32KΩ 000001: 64kΩ/1 = 64kΩ (most sensitive) 000000: RESERVED (do not use this setting) Table 45 Touchpanel Digitiser Control (Physical Characteristics)
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 POWER MANAGEMENT To save power, the touchpanel digitiser and the pen-down detector can be independently disabled when they are not used. The power consumption of the pen-down detector is normally negligible, except when the pen is down. The pen ADC is powered-down using PADCPD, register 3Ch bit 15. The state of the digitiser and pen down detector is controlled by the following bits. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 3Ch 15 PADCPD 1 = off Pen ADC power down 15:14 PRP 00 Pen ADC/AUX ADC enable 00 – Pen digitiser off, pen detect off, no wake-up on pen down (default) 01 – Pen digitiser powered off, pen detect enabled, touchpanel digitiser wakes up (changes to state 11) on pen-down 10 – Pen digitiser off, pen detect enabled, no wake-up on pen down 11 – Pen digitiser and pen detect enabled 78h
13 RPR 0 Wake-up on pen-down mode
0: Wake-up the AC-Link only (hold SDATAIN high until controller sends warm reset or cold reset) 1: Wake-up the WM9713L without waiting for a reset signal from the controller Table 46 Touchpanel Digitiser Control (Power Management)
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 INITIATION OF MEASUREMENTS The WM9713L touchpanel interface supports both polling routines and DMA (direct memory access) to control the flow of data from the touchpanel ADC to the host CPU. In a polling routine, the CPU starts each measurement individually by writing to the POLL bit (register 74h, bit 9). This bit automatically resets itself when the measurement is completed. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 9 POLL 0 Writing “1” initiates a measurement. (when CTC is not set) 74h
8 CTC 0 0: Polling mode
1: Continuous mode (for DMA) 76h 9:8 CR 00 Continuous mode rate (DEL 1111) 00: 93.75 Hz (every 512 AC-Link frames) 01: 120 Hz (every 400 AC-Link frames) 10: 153.75 Hz (every 312 AC-Link frames) 11: 187.5Hz (every 256 AC-Link frames) Continuous mode “fast rate” (DEL = 1111) 00: 8 kHz (every six AC-Link frames) 01: 12 kHz (every four AC-Link frames) 10: 24 kHz (every other AC-Link frame) 11: 48 kHz (every AC-Link frame)
11 PDEN 0 0: measure regardless of pen status
1: measure only when pen is down (when CTC=0 and POLL=1, measurement is delayed until pen-down; when CTC=1, measurements are stopped on pen-up) 78h
10 PDPOL 0 Sets polarity of PENDOWN flag:
0: non-inverted 1: inverted Table 47 Touchpanel Digitiser Control (Initiation of Measurements) In continuous mode (CTC = 1), the WM9713L autonomously initiates measurements (or sets of measurements) at the rate set by CR, and supplies the measured data to the CPU on one of the unused AC’97 time slots. DMA-enabled CPUs can write the data directly into a FIFO without any intervention by the CPU core. This reduces CPU loading and speeds up the execution of user programs in handheld systems. Note that the measurement frequency in continuous mode is also affected by the DEL bits (see “Touchpanel Settling Time”). The faster rates achieved when DEL = 1111 may be useful when the ADC is used for auxiliary measurements.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 MEASUREMENT TYPES The ADCSEL control bits determine which type of measurement is performed (see below). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 9 POLL 0 Writing “1” initiates a measurement. (when CTC is not set) 1: Continuous mode (for DMA)
7 ADCSEL_AUX4 0 Enable COMP1/AUX4 measurement
(pin32)
6 ADCSEL_AUX3 0 Enable COMP1/AUX3 measurement
(pin31)
5 ADCSEL_AUX2 0 Enable COMP1/AUX2 measurement
(pin30)
4 ADCSEL_AUX1 0 Enable COMP1/AUX1 measurement
(pin29)
3 ADCSEL_PRESSURE 0 Enable touchpanel pressure
2 ADCSEL_Y 0 Enable touchpanel Y co-ord
1 ADCSEL_X 0 Enable touchpanel X co-ord
0 COO 0 Enable co-ordinate mode
0: Single measurement. A single measurement is made depending on the setting of ADCSEL[7:1]. 1: Co-ordinate measurement. X, then Y, followed by an additional measurement indicated by ADCSEL[7:1]. If more than one ADCSEL[7:1] bit is selected then the third, additional, measurement will alternate sequentially between those selected. Table 48 Touchpanel Digitiser Control (Measurement Types) When COO is ‘0’, the WM9713L performs a single measurement – either in polling mode or continuously, as indicated by the CTC bit. The type of measurement is specified by the ADCSEL[7:1] bits. If CTC=0 (polling mode) then only one of the ADCSEL[7:1] bits should be set. If operating in continuous mode (CTC=1), then more than one ADCSEL[7:1] bit may be set and selected conversions will be performed cyclically in the following order => “X,Y,PRESSURE,AUX1,AUX2,AUX3,AUX4…” The co-ordinate mode (COO = ‘1’) makes it easier to obtain co-ordinate pairs rather than single co- ordinates. In polling-coordinate mode (CTC = ‘0’, COO = ‘1’), the WM9713L performs an X co- ordinate, then a Y co-ordinate, followed by a single additional measurement determined by ADCSEL[7:1], then stops. In continuous-coordinate mode (CTC = ‘1’, COO = ‘1’), the WM9713L continuously repeats a sequence consisting of an X-co-ordinate,Y co-ordinate, then an additional measurement determined by ADCSEL[7:1] (if ADCSEL = 000_0000, the sequence is XYXYXY… only). Should more than one of the ADCSEL[7:1] bits be set during continuous co-ordinate mode then the additional measurement alternates for every set of three measurements. For example if ADCSEL_AUX1 and ADCSEL_AUX3 were both selected whilst CTC = ‘1’, COO = ‘1’ then the following sequence of conversions would be performed = > “X,Y,AUX1,X,Y,AUX3,X,Y,AUX1,X,Y,AUX3…”
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 CONVERSION RATE As stated previously the conversion rate is specified by the CR bits (reg 76h). CR may be set to 93.75Hz (every 512 AC-Link Frames), 120Hz (every 400 AC-Link Frames), 153.75Hz (every 312 AC-Link frames) or 187.5Hz (every 256 AC-Link frames). If only one ADRSEL[7:1] bit is set then each individual conversion occurs at the rate specified by CR. If multiple ADRSEL[7:1] bits are set then the complete set of conversions requested is completed at the rate specified by CR. DATA READBACK This data is stored in register 7Ah, and can be retrieved by reading the register in the usual manner (see AC-Link Interface section). Additionally, the data can also be passed to the controller on one of the AC-Link time slots not used for audio functions. The output data word of the touchpanel interface consists of three parts:
- Pen Status (1 bit) – this is also passed to the GPIO logic block, which can be programmed to generate an interrupt and/or wake up the WM9713L on pen down (see GPIO and Interrupt Control).
- Output data from the touchpanel ADC (12 bits)
- ADCSRC: 3 additional bits that indicate the source of the ADC data. In co-ordinate mode (COO = ‘1’), the WM9713L schedules different types of measurements autonomously and so these register bits may be required. If the data is being read back using the polling method, there are several ways to determine when a measurement has finished:
- Reading back the POLL bit. If it has been reset to ‘0’, then the measurement has finished.
- Monitoring the ADA signal, see GPIO and interrupt section. ADA goes high after every single conversion. If operating in co-ordinate mode (COO=1) then ADA goes high after every group of 3 conversions.
- Reading back 7Ah until the new data appears
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 PNDN 0 Pen status (read-only)
0: Pen Up 1: Pen Down 14:12 ADCSRC 000 Touchpanel ADC Source 000: No measurement 001: X co-ordinate measurement 010: Y co-ordinate measurement 011: Pressure measurement (4-wire only) 100: COMP1/AUX1 measurement (pin 29) 101: COMP2/AUX2 measurement (pin 30) 110: BMON/AUX3 measurement (pin 31) 111: WIPER/AUX4 measurement (pin 12) 7Ah or AC-Link slot selected by SLT 11:0 ADCD 000h Touchpanel ADC Data (read-only) Bit 11 = MSB Bit 0 = LSB 78h 9 WAIT 0 0: No effect (new ADC data overwrites unread data in register 7Ah) 1: New data is held back, and measurements delayed, until register 7Ah is read) Table 49 Touchpanel Digitiser Data When operating in co-ordinate mode (COO=1) there will be 3 results to read back from each set of measurements – namely X,Y and the third additional measurement. After the co-ordinate set has finished the X result will be present in register 7Ah. Once this has been read back by the user the Y result will overwrite register 7Ah, as indicated by ADCSRC. Finally, after the Y result has been read back, the result of the third, additional, measurement will become present in 7Ah, again indicated by ADCSRC. To avoid losing data that has not yet been read, the WM9713L can delay overwriting register 7Ah with new conversions until the old data has been read. This function is enabled using the WAIT bit, and applies to both single and co-ordinate conversion mode. The flow diagram in Figure 24 shows the timing of touchpanel conversions, and data readback from register 7Ah - dependent on the individual settings of the CO, POLL,ADCSEL and CTC bits.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 POLL (74h) Starts a single measurement CTC (74h) Starts a co-ordinate measurement at specified conversion rate COO (74h) Enables Co-Ordinate mode ADCSEL (74H) Specifies the type of measurement to be made Figure 24 Touchpanel Conversion Flow Diagram If the SLEN bit is set to ‘1’, then the touchpanel data appears on the AC-Link slot selected by the SLT control bits, as shown below. The Slot 0 ‘tag’ bit corresponding to the selected time slot is asserted whenever there is new data on that slot. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
3 SLEN 0 Slot Readback Enable
0: Disabled (readback through register only) 1: Enable (readback slot selected by SLT) 76h 2:0 SLT 110 AC’97 Slot Selection for Touchpanel Data 000: Slot 5 001: Slot 6 101: Slot 10 110: Slot 11 111: RESERVED Table 50 Returning Touchpanel Data Through an AC-Link Time Slot
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 TOUCHPANEL SETTLING TIME For accurate touchpanel measurements, some settling time may be required between the switch matrix applying a voltage across the touchpanel plate and the ADC sampling the signal. This time delay function is built into the WM9713L and can be programmed as shown below. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 76h 7:4 DEL 0000 (1 frame) Touchpanel ADC Settling Time Table 51 Touchpanel Settling Time Control (1) DEL DELAY (AC-LINK FRAMES) DELAY (TIME) 0000 1 20.8 µs 0001 2 41.7 µs 0010 4 83.3 µs 0011 8 167 µs 0100 16 333 µs 0101 32 667 µs 0110 48 1ms 0111 64 1.33ms 1000 96 2ms 1001 128 2.67ms 1010 160 3.33ms 1011 192 4ms 1100 224 4.67ms 1101 256 5.33ms 1110 288 6ms
1111 No delay, switch matrix always on
Table 52 Touchpanel Settling Time Control (2) The total time for co-ordinate or auxiliary measurements to complete is the delay time DEL, plus one AC-Link frame (20.8 µs). For a pressure measurement, the time taken is DEL plus two AC-Link frames (41.6µs). Although the DELAY is variable the maximum value that may be programmed depends on the number of ADCSEL[7:1] bits set, as shown in the following table. Setting multiple ADCSEL[7:1] bits leaves less spare AC_Link frames for the DELAY.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 NUMBERS OF ADCSEL[1:7] BITS SET CR SETTING MAX DELAY SETTING 1 00 (93.75Hz) 288 1 01 (120Hz) 288 1 10 (153.75Hz) 288 1 11 (187.5Hz) 256 2 00 (93.75Hz) 256 2 01 (120Hz) 192 2 10 (153.75Hz) 128 2 11 (187.5Hz) 128 3, 4 00 (93.75Hz) 96 3, 4 01 (120Hz) 96 3, 4 10 (153.75Hz) 64 3, 4 11 (187.5Hz) 48 5,6,7 00 (93.75Hz) 48 5,6,7 01 (120Hz) 48 5,6,7 10 (153.75Hz) 32 5,6,7 11 (187.5Hz) 16 1 (if COO=1) 00 (93.75Hz) 224 1 (if COO=1) 01 (120Hz) 192 1 (if COO=1) 10 (153.75Hz) 128 1 (if COO=1) 11 (187.5Hz) 96 2,3,4,5,6,7 (if COO=1) 00 (93.75Hz) 160 2,3,4,5,6,7 (if COO=1) 01 (120Hz) 128 2,3,4,5,6,7,8 (if COO=1) 10 (153.75Hz) 96 2,3,4,5,6,7,8 (if COO=1) 11 (187.5Hz) 64 Table 53 Maximum Delay Values Setting DEL to ‘1111’ reduces the settling time to zero, i.e. measurements begin immediately. This mode is intended for fast sampling on AUX inputs. It is NOT intended for touchpanel digitisation. There are several side-effects when DEL is set to ‘1111’:
- Co-ordinate mode does not work, i.e. the WM9713L behaves as if COO = 0, even if COO = 1 (see “Measurement Types”)
- If X / Y co-ordinate or touch pressure measurements are selected (ADCSEL = 001, 010 or 011), then the switch matrix is constantly on, and current constantly flows in the touchpanel. This increases power consumption in the system, and is therefore not recommended for battery powered systems
- In continuous mode (CTC = 1), setting DEL = 1111 increases the sampling rate of the touchpanel ADC (see “Initiation of Measurements”)
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 MASK INPUT CONTROL Sources of glitch noise, such as the signals driving an LCD display, may feed through to the touchscreen plates and affect measurement accuracy. In order to minimise this effect, a signal may be applied to MASK (pin 47 / pin 3) to delay or synchronise the sampling of any i nput to the ADC. The effect of the MASK signal depends on the the MSK bits of register 78h (bits [7:6]), as described below. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 78h 7:6 MSK 00 MASK input control (see Table 55) Table 54 MASK Input Control MSK[1-0] EFFECT OF SIGNAL ON MASK PIN
00 Mask has no effect on conversions GPIO input disabled (default)
01 Static; ‘hi’ on MASK pin stops conversions, ‘lo’ has no effect.
10 Edge triggered; rising or falling edge on MASK pin delays conversions
by an amount set in the DEL[3-0] register. Conversions are asynchronous to the MASK signal.
11 Synchronous mode; conversions wait until rising or falling edge on MASK initiates
cycle; screen starts to be driven when the edge arrives, the conversion sample being taken a period set by DEL[3-0] after the edge. Table 55 Controlling the MASK Feature Note that pin 47 / pin 3 can also be used as a GPIO(see “GPIO and Interrupt Control” section), or to output the ADA signal (see below). THE ADA SIGNAL Whenever data becomes available from the touchpanel ADC, the internal ADA (ADC Data Available) signal goes high and remains high until the data has been read from register 7Ah (if SLEN = 0) or until it has been sent out on an AC-Link slot (if SLEN = 1). ADA goes high either-
- After every touchpannel ADC conversion (in normal mode, COO=0)
- After every set of 3 conversions (co-ordinate mode, COO=1) ADA can be used to generate an interrupt, if the AW bit (register 52h, bit 12) is set (see “GPIO and interrupt control” section) It is also possible to output the ADA signal on pin 47 / pin 3, if this pin is not used as a GPIO. The GE4/6 bit must be set to ‘0’ to achieve this (see “GPIO and interrupt control” section). Alternatively, ADA can be read from bit 12 in register 54h.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 ADDITIONAL FEATURES AUXILIARY ADC INPUTS The ADC used for touchpanel digitisation can also be used for the sole purpose of auxiliary measurements, provided that it is enabled (register 78h, PRP = 11). The WM9713L has three pins that can be used as auxiliary ADC inputs:
- MIC2A / COMP1 / AUX1 (pin 29)
- MIC2B / COMP2 / AUX2 (pin 30)
- WIPER / AUX4 (pin 12) Additionally, the speaker supply (SPKVDD) can be used as an auxillary ADC input through an on- chip potential divider giving an input to the auxillary ADC of SPKVDD/3. This i nput is referred to as the AUX3 input (see Figure 16). Note that pin 12 connects to the wiper of a 5-wire touchpanel wiper function. Auxiliary measurements taken on pin 12 are only meaningful when it is not connected to a touchpanel (i.e. a 4-wire touchpanel, or no touchpanel at all, is used). Pins 29 and 30 are also used as comparator inputs (see Battery Alarm and Battery Measurement), but auxiliary measurements can still be taken on these pins at any time. The ADCSEL control bits select between different ADC inputs, as shown in Table 56. The ADCSEL control bits determine which type of measurement is performed (see below). When performing auxiliary conversions the co-ordinate mode bit, COO, should be off (0). If CTC=0 then only one of the ADCSEL[7:1] bits should be set. If operating in continuous mode (CTC=1), then more than one ADCSEL[7:1] bit may be set, and conversions will be performed cyclically in the following order => “AUX1,AUX2,AUX3,AUX4…” – dependent on which bits are set. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
7 ADCSEL_AUX4 0 Enable AUX4 measurement (pin12)
6 ADCSEL_AUX3 0 Enable AUX3 measurement (SPKVDD)
5 ADCSEL_AUX2 0 Enable AUX2 measurement (pin30)
4 ADCSEL_AUX1 0 Enable AUX1 measurement (pin29)
0 COO 0 Enable co-ordinate mode – for touchpanel
conversions only (see “Controlling the Touchpanel Interface”) Table 56 Auxiliary ADC Measurements Auxiliary ADC measurements are initiated in the same way as touchpanel measurements, and the data is returned in the same manner. Please refer to the “Controlling the Touchpanel Interface” section.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 BATTERY ALARM AND ANALOGUE COMPARATORS The battery alarm function differs from battery measurement in that it does not actually measure the battery voltage. Battery alarm only indicates “OK”, “Low” or “Dead”. The advantage of the battery alarm function is that it does not require a clock and can therefore be used in low-power sleep or standby modes. Figure 25 Battery Alarm Example Schematic The typical schematic for a dual threshold battery alarm is shown above. This alarm has two thresholds, “dead battery” (COMP1) and “low battery” (COMP2). R1, R2 and R3 set the threshold voltages. Their values can be up to about 1M Ω in order to keep the battery current [I ALARM = VBATT / (R1+R2+R3)] to a minimum (higher resistor values may affect the accuracy of the system as leakage currents into the input pins become significant). Dead battery alarm: COMP1 triggers when V BATT < VREF × (R1+R2+R3) / (R2+R3) A dead battery alarm is the highest priority of interrupt in the system. It should immediately save all unsaved data and shut down the system. The GP15, GS15 and GW15 bits must be set to generate this interrupt. Low battery alarm: COMP2 triggers when VBATT < VREF × (R1+R2+R3) / R3 A low battery alarm has a lower priority than a dead battery alarm. Since the threshold voltage is higher than for a dead battery alarm, there is enough power left in the battery to give the user a warning and/or shut down “gracefully”. When V BATT gets close to the low battery threshold, spurious alarms are filtered out by the COMP2 delay function. The purpose of the capacitor C is to remove from the comparator inputs any high frequency noise or glitches that may be present on the battery (for example, noise generated by a charge pump). It forms a low pass filter with R1, R2 and R3. Low pass cutoff fc [Hz] = 1/ (2π C × (R1 || (R2+R3))) Provided that the cutoff frequency is several orders of magnitude lower than the noise frequency f n, this simple circuit can achieve excellent noise rejection. Noise rejection [dB] = 20 log (fn / fc) The circuit shown above also allows for measuring the battery voltage V BATT. This is achieved simply by setting the touchpanel ADC input to be either COMP1 (ADCSEL = 100) or COMP2 (ADCSEL = 101) (see also Auxiliary ADC Inputs).
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 The WM9713L has two on-chip comparators that can be used to implement a battery alarm function, or other functions such as a window comparator. Each comparator has one of its inputs tied to any one of three device pins and the other tied to a voltage reference. The voltage reference can be either internally generated (VREF = AVDD/2) or externally connected on AUX4 (pin 12). The comparator output signals are passed to the GPIO logic block (see “GPIO and Interrupt Control” section), where they can be used to send an interrupt to the CPU via the AC-Link or via the IRQ pin, and / or to wake up the WM9713Lfrom sleep mode. COMP1/AUX1 (pin 29) corresponds to GPIO bit 15 and COMP2/AUX2 (pin30) to bit 14. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 CP1 1 COMP1 Polarity (see also “GPIO and Interrupt
Control”) 0: Alarm when COMP1 voltage is above VREF 1: Alarm when COMP1 voltage is below VREF 4Eh
14 CP2 1 COMP1 Polarity (see also “GPIO and Interrupt
Control”) 0: Alarm when COMP2 voltage is above VREF 1: Alarm when COMP2 voltage is below VREF 5Ah 15:13 COMP2 DEL
000 Low Battery Alarm Delay
000: No delay 001: 0.17s (213 = 8192 AC-Link frames) 010: 0.34s (214 = 16384 AC-Link frames) 011: 0.68s (215 = 32768 AC-Link frames) 100: 1.4s (216 = 65536 AC-Link frames) 101: 2.7s (217 = 131072 AC-Link frames) 110: 5.5s (218 = 262144 AC-Link frames) 111: 10.9s (219 = 524288 AC-Link frames) Table 57 Comparator Control REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION Comparator 1 Reference Voltage
0 VREF = AVDD/2
14 C1REF 0
1 WIPER/AUX4 (pin 12)
Comparator 1 Signal Source 00 AVDD/2 when C1REF=’1’. Otherwise comparator 1 is powered down
01 COMP1/AUX1 (pin 29)
10 COMP2/AUX2 (pin 30)
13:12 C1SRC 00
11 AUX3 (SPKVDD)
Comparator 2 Reference Voltage
11 C2REF 0
Comparator 2 Signal Source 00 AVDD/2 when C2REF=’1’. Otherwise comparator 2 is powered down 10:9 C2SRC 00 Table 58 Comparator Reference and Source Control
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 COMP2 DELAY FUNCTION COMP2 has an optional delay function for use when the input signal is noisy. When COMP2 triggers and the delay is enabled (i.e. COMP2DEL is non-zero), then GPIO bit 14 does not change state immediately, and no interrupt is generated. Instead, the WM9713L starts a delay timer and checks COMP2 again after the delay time has passed. If COMP2 is still active, then the GPIO bit is set and an interrupt may be generated (depending on the state of the GW14 bit). If COMP2 is no longer active, the GPIO bit is not set, i.e. all register bits are as if COMP2 had never triggered. COMP2 TRIGGERS START TIMER COMP2? WAIT time=COMP2DEL SHUT DOWN TIMER Inactive Active SET GI14 END END [FALSE ALARM] COMP2 DEL? non-zero C2W? 0 END 000 Figure 26 COMP2 Delay Flow Chart
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 GPIO AND INTERRUPT CONTROL The WM9713L has eight GPIO pins that operate as defined in the AC’97 Revision 2.2 specification. Each GPIO pin can be set up as an input or as an output, and has corresponding bits in register 54h and in slot 12. The state of a GPIO output is determined by sending data through slot 12 of outgoing frames (SDATAOUT). Data can be returned from a GPIO input by reading the register bit, or examining slot 12 of incoming frames (SDATAIN). GPIO inputs can be made sticky, and can be programmed to generate an interrupt, transmitted either through the AC-Link or through a dedicated, level-mode interrupt pin (GPIO2/IRQ, pin 45). In addition, the GPIO pins 1, 3, 4 and 5 can be used for the PCM interface by setting bit 15 of register 36h (see “PCM Codec” section). Setting this bit disables any GPIO functions selected on these pins. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 36h PCM Codec Control
15 CTRL 0 Enables PCM interface on GPIO pins 1, 3, 4 and
0: Normal GPIO functions 1: PCM interface enabled 56h GPIO Pin Sharing 8:2 GE# 1 (GPIO) Toggle GPIO pin function: 0: secondary function enabled 1: GPIO enabled Table 59 GPIO Additional Function Control GPIO pins 2 to 8 are multi-purpose pins that can also be used for other (non-GPIO / -PCM) purposes, e.g. as a SPDIF output or to signal pendown. This is controlled by register 56h. Note that GPIO6/7/8 each have an additional function independent of the GPIO / auxillary functions discussed above. If these pins are to be used as GPIO then the independent function needs to be disabled using its own control registers, e.g. to use pin 11 as a GPIO then the RESETB function needs to be disabled (RSTDIS, register 5Ah, bit 8). Independently of the GPIO pins, the WM9713L also has seven virtual GPIOs. These are signals from inside the WM9713L, which are treated as if they were GPIO input signals. From a software perspective, virtual GPIOs are the same as GPIO pins, but they cannot be set up as outputs, and are not tied to an actual pin. This allows for simple, uniform processing of different types of signals that may generate interrupts (e.g. pen down, battery warnings, jack insertion, high-temperature warning, or GPIO signals).
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 Figure 27 GPIO Logic GPIO BIT SLOT
12 BIT
TYPE PIN NO. 2 6 GPIO Pin 45 GPIO2 / IRQ enabled only when pin not used as IRQ 3 7 GPIO Pin 46 GPIO3 / PENDOWN enabled only when pin not used as PENDOWN 4 8 GPIO Pin 47 GPIO4 / ADA / MASK enabled only when pin not used as ADA 5 9 GPIO Pin 48 GPIO5 / SPDIF_OUT enabled only when pin not used as SPDIF_OUT 6 10 GPIO Pin 3 GPIO6 / ADA / MASK Enabled only when pin not used as ADA 7 11 GPIO Pin 11 GPIO7 / PENDOWN enabled only when pin not used as PENDOWN 8 12 GPIO Pin 12 GPIO8 / SPDIF_OUT enabled only when pin not used as SPDIF_OUT 9 13 Virtual GPIO - [MICDET] Internal microphone bias current detect, generates an interrupt above a threshold (see MICBIAS Current Detect) 10 14 Virtual GPIO - [MICSHT] Internal shorted microphone detect, generates an interrupt above a threshold (see MICBIAS Current Detect) 11 15 Virtual GPIO - [Thermal Cutout] Internal thermal cutout signal, indicates when internal temperature reaches approximately 150°C (see “Thermal Sensor”) 12 16 virtual GPIO - [ADA] Internal ADA (ADC Data Available) Signal enabled only when touchpanel ADC is active 13 17 Virtual GPIO - [PEN DOWN] Internal PENDOWN Signal enabled only when pen-down detection is active 14 18 Virtual GPIO - [COMP2] Internal COMP2 output (Low Battery Alarm) enabled only when COMP2 is on 15 19 Virtual GPIO - [COMP1] Internal COMP1 output (Dead Battery Alarm) enabled only when COMP1 is on Table 60 GPIO Bits and Pins
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 Note: GPIO7 (Pin 11) has an independent RESETB function. This must be disabled using RSTDIS (Register 5Ah, bit 8) before using Pin 11 as a GPIO / PENDOWN. The properties of the GPIOs are controlled through registers 4Ch to 52h, as shown below. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 4Ch n GCn 1 GPIO Pin Configuration 0: Output 1: Input GC9-15 are always ‘1’ GPIO Pin Polarity / Type Input (GCn=1) Output (GCn=0) 4Eh n GPn 1 0: Active Low 1: Active High [GIn = pin level XNOR GPn] 0: Active High 1: Active low 50h n GSn 0 GPIO Pin Sticky 1: Sticky 0: Not Sticky 52h n GWn 0 GPIO Pin Wake-up 1: Wake Up (generate interrupts from this pin) 0: No wake-up (no interrupts generated) 54h n GIn N/A GPIO Pin Status Read: Returns status of each GPIO pin Write: Writing ‘0’ clears sticky bit Table 61 GPIO Control The following procedure is recommended for handling interrupts: When the controller receives an interrupt, check register 54h. For each GPIO bit in descending order of priority, check if the bit is ‘1’. If yes, execute corresponding interrupt routine, then write ‘0’ to corresponding bit in 54h. If no, continue to next lower priority GPIO. After all GPIOs have been checked, check if interrupt still present or no. If yes, repeat procedure. If no, then jump back to process that ran before the interrupt. If the system CPU cannot execute such an interrupt routine, it may be preferable to switch internal signals (such as PENDOWN) directly onto the GPIO pins. However, in this case the interrupt signals cannot be made sticky, and more GPIO pins are tied up both on the WM9713L and on the CPU.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
2 GE2 1 GPIO2 / IRQ output select
0: Pin 45 disconnected from GPIO logic set 4Ch, bit 2 to ‘0’ to output IRQ signal 1: Pin 45 connected to GPIO logic (IRQ disabled)
3 GE3 1 GPIO3 / PENDOWN output select
0: Pin 46 disconnected from GPIO logic set 4Ch, bit 3 to ‘0’ to output PENDOWN signal 1: Pin 46 connected to GPIO logic
4 GE4 1 GPIO4 / ADA / MASK output select
0: Pin 47 disconnected from GPIO logic set 4Ch, bit 4 to ‘0’ to output ADA signal set 4Ch, bit 4 to ‘1’ to input MASK signal 1: Pin 47 connected to GPIO logic
5 GE5 1 GPIO5 / SPDIF output select
0: Pin 48 = SPDIF (disconnected from GPIO logic) set 4Ch, bit 5 to ‘0’ to output SPDIF signal 1: Pin 48 connected to GPIO logic (SPDIF disabled)
6 GE6 1 GPIO6 / ADA / MASK output select
0: Pin 3 disconnected from GPIO logic set 4Ch, bit 6 to ‘0’ to output ADA signal set 4Ch, bit 6 to ‘1’ to input MASK signal 1: Pin 3 connected to GPIO logic
7 GE7 1 GPIO7 / PENDOWN output select
0: Pin 11 disconnected from GPIO logic set 4Ch, bit 7 to ‘0’ to output PENDOWN signal 1: Pin 11 connected to GPIO logic 56h GPIO pins function select
8 GE8 1 GPIO8 / SPDIF output select
0: Pin 12 = SPDIF (disconnected from GPIO logic) set 4Ch, bit 8 to ‘0’ to output SPDIF signal 1: Pin 12 connected to GPIO logic (SPDIF disabled) Table 62 Using GPIO Pins for Non-GPIO Functions
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 POWER MANAGEMENT INTRODUCTION The WM9713L includes the standard power down control register defined by the AC’97 specification (register 26h). Additionally, it also allows more specific control over the individual blocks of the device through register Powerdown registers 3Ch and 3Eh. Each particular circuit block is active when both the relevant bit in register 26h AND the relevant bit in the Powerdown registers 3Ch and 3Eh are set to ‘0’. Note that the default power-up condition is all OFF. AC97 CONTROL REGISTER REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
14 PR6 1 (OFF) Disables all output PGAS
13 PR5 1 (OFF) Disables internal clock
12 PR4 1 (OFF) Disables AC-link interface (external clock off)
11 PR3 1 (OFF) Disables VREF, input PGAs, DACs, ADCs,
10 PR2 1 (OFF) Disables input PGAs and mixers
9 PR1 1 (OFF) Disables stereo DAC
8 PR0 1 (OFF) Disables stereo ADCs and record mux PGA
3 REF 0 Read-only bit, indicates VREF is ready (inverse
of PR2)
2 ANL 0 Read-only bit, indicates analogue mixers are
ready (inverse of PR3)
1 DAC 0 Read-only bit, indicates stereo DAC is ready
(inverse of PR1) 26h Powerdown/ Status register
0 ADC 0 Read-only bit, indicates stereo ADC is ready
(inverse of PR0) Table 63 Powerdown and Status Register (Conforms to AC’97 Rev 2.2) EXTENDED POWERDOWN REGISTERS REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 PADCPD 1 (OFF) Disables touchpanel/aux ADC
14 VMID1M 1 (OFF) Disables 1Meg Vmid resistor string
13 TSHUT 1 (OFF) Disables thermal shutdown
12 VXDAC 1 (OFF) Disables VXDAC
11 AUXDAC 1 (OFF) Disables AUXDAC
10 MBIAS 1 (OFF) Disables master bias reference generator
9 PLL 1 (OFF) Disables PLL
7 DACL 1 (OFF) Disables left DAC (see Note 1)
6 DACR 1 (OFF) Disables right DAC (see Note 1)
5 ADCL 1 (OFF) Disables left ADC
4 ADCR 1 (OFF) Disables right ADC
3 HPLX 1 (OFF) Disables left headphone mixer
2 HPRX 1 (OFF) Disables right headphone mixer
1 SPKX 1 (OFF) Disables s peaker mixer
(1)
0 MX 1 (OFF) Disables mono mixer
Note: When analogue inputs or outputs are disabled, they are internally connected to VREF through a large resistor (VREF=AVDD/2 except when VREF and VMID1M are both OFF). This maintains the potential at that node and helps to eliminate pops when the pins are re-enabled. Table 64 Extended Power Down Register (1) (Additional to AC’97 Rev 2.2) Note: 1. When disabling a PGA, always ensure that it is muted first.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 Table 65 Extended Power Down Register (2) (Additional to AC’97 Rev 2.2) Note: 1. When disabling a PGA, always ensure that it is muted first. ADDITIONAL POWER MANAGEMENT Mixer output inverters: see “Mixer output Inverters” section. Inverters are OFF by default. Touchpanel Interface: see “Controlling the Touchpanel Digitiser / Power Management”. The touchpanel digitiser is OFF by default. SLEEP MODE Whenever the PR4 bit (reg. 26h) is set, the AC-Link interface is disabled, and the WM9713L is in sleep mode. There is in fact a very large number of different sleep modes, depending on the other control bits. For example, the low-power standby mode described below is a sleep mode. It is desirable to use sleep modes whenever possible, as this will save power. The following functions do not require a clock and can therefore operate in sleep mode:
- Analogue-to-analogue audio (DACs and ADCs unused), e.g. phone call mode
- Pen-down detection
- GPIO and interrupts
- Battery alarm / analogue comparators The WM9713L can awake from sleep mode as a result of
- A warm reset on the AC-Link (according to the AC’97 specification)
- A signal on a GPIO pin (if the pin is configured as an input, with wake-up enabled – see “GPIO and Interrupt Control” section)
- A virtual GPIO event such as pen-down, battery alarm, etc. (see “GPIO and Interrupt Control” section) REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION
15 MCD 1 (OFF) Disables microphone current detect
14 MICBIA
S 1 (OFF) Disables microphone bias
13 MONO 1 (OFF) Disables MONO output PGA (see Note 1)
12 OUT4 1 (OFF) Disables OUT4 output PGA ( “ “ )
11 OUT3 1 (OFF) Disables OUT3 output PGA ( “ “ )
10 HPL 1 (OFF) Disables HPL output PGA ( “ “ )
9 HPR 1 (OFF) Disables HPR output PGA ( “ “ )
8 SPKL 1 (OFF) Disables SPKL output PGA ( “ “ )
7 SPKR 1 (OFF) Disables SPKR output PGA ( “ “ )
6 LL 1 (OFF) Disables LINEL PGA ( “ “ )
5 LR 1 (OFF) Disables LINER PGA ( “ “ )
4 MOIN 1 (OFF) Disables MONOIN PGA ( “ “ )
3 MA 1 (OFF) Disables mic PGA MA ( “ “ )
2 MB 1 (OFF) Disables mic PGA MB ( “ “ )
1 MPA 1 (OFF) Disables mic pre-amp MPA
(2)
0 MPB 1 (OFF) Disables mic pre-amp MPB
Note: When analogue inputs or outputs are disabled, they are internally connected to VREF through a large resistor (VREF=AVDD/2 except when VREF and VMID1M are both OFF). This maintains the potential at that node and helps to eliminate pops when the pins are re-enabled.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 LOW POWER STANDBY MODE If all the bits in registers 26h, 3Ch and 3Eh are set except VMID1M (register 3Ch, bit 14), then the WM9713L is in low-power standby mode and consumes very little current. A 1M Ω resistor string remains connected across AVDD to generate VREF. This is necessary if the on-chip analogue comparators are used (see “Battery Alarm and Battery Measurement” section), and helps shorten the delay between wake-up and playback readiness. If VREF is not required, the 1M Ω resistor string can be disabled by setting the VMID1M bit, reducing current consumption further. SAVING POWER AT LOW SUPPLY VOLTAGES The analogue supplies to the WM9713L can run from 1.8V to 3.6V. By default, all analogue circuitry on the IC is optimized to run at 3.3V. This set-up is also good for all other supply voltages down to 1.8V. However, at lower voltages, it is possible to save power by reducing the internal bias currents used in the analogue circuitry. This is controlled as shown below. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION 5Ch 6:5 VBIAS 00 Analogue Bias optimization 11 : Lowest bias current, optimized for 1.8V 10 : Low bias current, optimized for 2.5V 01, 00 : Default bias current, optimized for 3.3V Table 66 Analogue Bias Selection POWER ON RESET (POR) The WM9713L has an internal power on reset (PORB) which ensures that a reset is applied to all registers until a supply threshold has been exceeded. The POR circuitry monitors the voltage for both AVDD and DCVDD and will release the internal reset signal once these supplies are both nominally greater than 1.36V. The internal reset signal is an AND of the PORB and RESETB input signal. It is recommended that for operation of the WM9713L, all device power rails should be stable before configuring the device for operation. AC97 INTERFACE TIMING Test Characteristics: DBVDD = 3.3V, DCVDD = 3.3V, DGND1 = DGND2 = 0V, T A = -25 °C to +85 °C, unless otherwise stated. CLOCK SPECIFICATIONS BITCLK SYNC tCLK_HIGH tCLK_LOW tCLK_PERIOD tSYNC_HIGH tSYNC_LOW tSYNC_PERIOD Figure 28 Clock Specifications (50pF External Load)
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 PARAMETER SYMBOL MIN TYP MAX UNIT BITCLK frequency 12.288 MHz BITCLK period tCLK_PERIOD 81.4 ns BITCLK output jitter 750 ps BITCLK high pulse width (Note 1) tCLK_HIGH 36 40.7 45 ns BITCLK low pulse width (Note 1) tCLK_LOW 36 40.7 45 ns SYNC frequency 48 kHz SYNC period tSYNC_PERIOD 20.8 µs SYNC high pulse width tSYNC_HIGH 1.3 µs SYNC low pulse width tSYNC_LOW 19.5 µs Note: 1. Worst case duty cycle restricted to 45/55
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 WARM RESET (ASYNCHRONOUS, PRESERVES REGISTER SETTINGS) Figure 33 Warm Reset Timing PARAMETER SYMBOL MIN TYP MAX UNIT SYNC active high pulse width tSYNC_HIGH 1.3 µs SYNC inactive to BITCLK startup delay tRST2CLK 162.4 ns
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 REGISTER MAP R e g N am e 1 5 1 4 1 3 1 2 1 1 1 09876543210 D e f au l t Reset 0 SE4 SE3 SE2 SE1 SE0 ID9 ID8 ID7 ID6 ID5 ID4 ID3 ID2 ID1 ID0 61 74h Spe aker Volu me M UL ZCL MUR ZCR 8080h H e adphone Volum e M UL ZCL MUR ZCR 8080h OUT3/4 Volum e M U4 ZC4 MU3 ZC3 8080h M ONO V o l & M ONOIN PGA V o l / Routing M 2H M 2S 0 M U ZC C880h LINEI N PGA Volum e / Routing L 2H L 2S L2M 0 0 0 E808h DAC PGA Volum e / Routing D2H D2S D2M 0 0 0 E808h M IC PGA Volum e 0 0 0 0 0 0 0808h M I C R o u t i n g 00000000 M A 2 M M B 2 M M I C 2 M BS T 00DAh Record PGA Volum e RM U GRL ZC GRR 8000h Record Rout ing / M ux Select R2M BST 0R E C BST D600h PCBEEP Volume / Routing B 2H B2S B2M 0 0 0 0 AAA0h VxDAC Volu m e / Rou tin g V2H V2S V2M 0 0 0 0 AAA0h AUXDAC Volu m e / Rou tin g A2H A2S A2M 0 0 0 0 AAA0h Output PGA M ux Select 0000h DAC 3D Con trol & I NV M ux Select 0 0 0 0 3DLC 3DUC 0000h DAC Tone Control BB 0 0 BC 0 DAT 0 TC 0F0Fh M IC Inp ut Select & Bias / Detect Ctrl MBO P 2EN MBO P 1 EN MBVO L 0040h Output V olume M apping (Jack Insert)
00000000000 J I E N 0000h
P o w e r d o w n C t r l /S t a t 0 P R 6 P R 5 P R 4 P R 3 P R 2 P R 1 P R 0 0000 R E F A N L D A C A D C 7 F 0 0 h Extended Audio I D I D1 I D0 0 0 REV1 REV0 AM AP LDAC SDAC CDAC 0 0 VRM SPDI F DRA VRA 0405h E x t ' d A u d i o S t a t /C t r l 00000 S P C V 0000 0 S E N 0 V R A 0 4 1 0 h Audio DACs Sample Ra te BB80h AUXDAC S a m ple Ra te BB80h Audio ADCs Sample Ra te BB80h PCM codec control CTRL SWAP VDAC OSR CP FSP 4523h SPDIF control V DRS L PRE COPY AUD IB PRO 2000h Powerdown (1 ) PADCP D VMI D TSH UT VXDA C AUXD AC M B IAS PLL 1 DACL DA CR A DCL A DCR HPLX HPRX SPKX M X FEFFh Powerdown (2) M CD M IC BIAS M ONO OUT4 OUT3 HPL HPR SPKL SPKR LL LR M OIN M A M B M PA M PB FFFFh G e n e r a l P u r p o s e 00 3 D E 00000 L B 0000000 0000h F a s t P o w e r - U p C o n t r o l 000000000 M O N O SPKL SPKR HPL HPR OUT3 OUT4 0000h M CLK / PLL Control 0 CLKSR C CLKBX CL KAX CLKM U X 0080h M CLK / PLL Control LF SDM DIVSEL DIV CTL 0 0000h G P I O P i n C o n f i g u r a t i o n 1111111 G C 8 G C 7 G C 6 G C 5 G C 4 G C 3 G C 2 G C 1 0 FFFEh GPIO Pin Polarity / Type C1 P C2P PP AP TP SP M P GP8 GP7 GP6 GP5 GP4 GP3 GP2 GP1 1 FFFFh GPI O Pin Sticky C1 S C2S PS AS TS SS M S GS8 GS7 GS6 GS5 GS4 GS3 GS2 GS1 0 0000h GPI O Pin Wake-Up C1 W C2W PW AW TW SW MW GW8 GW7 GW6 GW5 GW4 GW3 GW2 GW1 0 0000h GPIO Pin Stat us C1I C2 I PI A I TI SI M I GI8 GI7 GI6 GI5 GI4 GI3 GI2 GI1 0 GPIO p ins G P I O P i n S h a r i n g 1111111 G E 8 G E 7 G E 6 G E 5 G E 4 G E 3 G E 2 10 FFFEh GPI O Pull UP/DOWN Ctrl PU8 PU7 PU6 PU5 PU4 PU3 PU2 PU1 PD8 PD7 PD6 PD5 PD4 PD3 PD2 PD1 4000h A d d i t i o n a l F u n c t i o n s ( 1 ) 0000 R S T D I S W A K E E N IRQ INV 0000h A ddit ional Funct ions (2) AMUTE C1 REF C2 REF 0 AM EN ADCO H PF 0 0000h ALC Control B032h A LC / Noise Gat e Cont rol ALCZC NGAT 0 NGG 3E00h AUXDAC in pu t c on trol XS L E 0000h Test Register (1 ) EVAL CASLP ENB CM PTS T ADCTS T VMI DB P XCL KE NB DITHEN B MU T E J ENB DCCAP DPI 0060h Test Register (2) BISTEN 3DTST EN DACTS TEN INTLPB CK
3 D C L K3 D B PB M O N
T RMPD NENB RAM IN IT 0000h Test Register (3) 0 0 0 IBSTG BL IBSTPA DC HIOP HIM IX HIPGA HIDA C HIA DC I P 0000h Test Register (4) TSTLF TSTDIG TSTLK TSTRS T
00000 C L K D E
_RST VG P I O _SET WP_B CLK WP _M CLK 0000h D i g i t i s e r R e g 1 000000 P O L L C T C COO 0000h D i g i t i s e r R e g 2 000000 S L E N 0006h Digitiser Re g 3 RPR 45 W PDEN PDPOL WAIT PI L 0001 h Digitiser Re ad Back PNDN 0000h Ven dor I D1 574Dh Ven dor I D2 4C1 3h PENDIV DCDRVSEL EARSPKSEL M ODE DIV SEL WL FM T SPSR CC (Cat egory Code) 7Eh A SCII charact er “ L” “ 13” (indicat es part number W M 9713) AUXDACSL T AUXDAC VAL IB STM P A DCSEL 7Ah ADCSRC ADCD (TOUCHPANEL ADC Y DATA) 7Ch A SCII character “ W ” A SCII charact er “ M ” DEL SLT 78h PRP MS K R P U 74h 76h CR RAM TST 6Ch IA DC 6E h VDACTSTEN DWAM ODE THERM SHUT 6Ah PENADCTST 64h 68h DM ODE ASS 60h 6 2h A LCSEL M AXGA IN ZCTIM EOUT NGTH (t hreshold) A LCL (target level) HLD (hold t ime)
5 Ch C1 SRC C2SRC VBIAS
5A h COM P2DEL Die RevisionHPM ODEJSEL 50h 52h 54h 56h 4Ch 4E h 40h 42h 44h 46h 3Ch 3E h 36h 3Ah 2E h AUXDACSR (Au xilia ry DAC Sa m ple Ra te ) 32h ADCSR (Audio ADCs Sample Rate) 2Ah SPSA 2Ch DA CSR (A udio DA Cs Sample Rate) 24h 26h DCY (decay time) ATK (attack time) N[3: 0] PGADDR PGDATA SEXT[6:4] SEXT[3: 0] 28h 20h BASS TRBL 2 2h M ICCM PSEL M PASEL M PABST M PBB ST M CDTHR M CDSCTHR 1E h I N V A I N V B 3DDEPTH HPL HPR OUT3 OUT41 Ch M ONO SPKL SPKR
1 Ah A2H VOL A2SVOL A2MVOL
1 8h V2H VOL V2SVOL V2MVOL RECSL RECSR 1 6h B2H VOL B2SVOL B2MVOL 1 4h R2H R2HVOL R2M 10 h MI C 2H MI C 2H VO L 1 2h (Ext ended) RECV OLL (Extended) RECV OLR 0Ch DACL VOL DACRVOL 0E h MI CAVOL MI CBVOL 08h M ONOINVOL M ONOVOL 0Ah LINELV OL LINERV OL 06h OUT4V OL OUT3VOL 04h HPLV OL HPRV OL 00h 02h SPKLVOL SPKRVOL Table 67 WM9713L Register Map
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 REGISTER BITS BY ADDRESS REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 14:10 SE [4:0] 11000 Indicates a codec from Wolfson Microelectronics 9:6 ID9:6 0101 Indicates 18 bits resolution for ADCs and DACs
5 ID5 1 Indicates that the WM9713L supports bass boost
4 ID4 1 Indicates that the WM9713L has a headphone output
3 ID3 0 Indicates that the WM9713L does not support simulated
2 ID2 1 Indicates that the WM9713L supports bass and treble control
1 ID1 0 Indicates that the WM9713L does not support modem
0 ID0 0 Indicates that the WM9713L does not have a dedicated
Intel’s AC’97 Component Specification, Revision 2.2, page 50 Register 00h is a read-only register. Writing any value to this register resets all registers to their default, but does not change the contents of reg. 00h. Reading the register reveals information about the codec to the driver, as required by the AC’97 Specification, Revision 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 MUL 1 (mute) Mutes SPKL
14 ZCL 0 (OFF) Enables zero-cross detector on SPKL
13:8 SPKLVOL 000000 (0dB) SPKL volume
7 MUR 1 (mute) Mutes SPKR
7 ZCR 0 (OFF) Enables zero-cross detector on SPKR
5:0 SPKRVOL 000000 (0dB) SPKR volume Analogue Audio Outputs Register 02h controls the output pins SPKL and SPKR. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 MUL 1 (mute) Mutes HPL
14 ZCL 0 (OFF) Enables zero-cross detector on HPL
13:8 HPL VOL 000000 (0dB) HPL volume
7 MUR 1 (mute) Mutes HPR
6 ZCR 0 (OFF) Enables zero-cross detector on HPR
5:0 HPR VOL 000000 (0dB) HPR volume Analogue Audio Outputs Register 04h controls the headphone output pins, HPL and HPR. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 MU4 1 (mute) Mutes OUT4
14 ZC4 0 (OFF) Enables zero-cross detector
13:8 OUT4VOL 000000 (0dB) OUT4 volume
7 MU3 1 (mute) Mutes OUT3
6 ZC3 0 (OFF) Enables zero-cross detector
5:0 OUT3VOL 000000 (0dB) OUT3 volume Analogue Audio Outputs Register 06h controls the analogue output pins OUT3 and OUT4.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 M2H 1 (mute) Mutes MONOIN to headphone mixer paths
14 M2S 1 (mute) Mutes MONOIN to speaker mixer path
12:8 MONOINVOL 01000 (0dB) Controls MONOIN input gain to all mixers (but not to ADC) 7 MU 1 (mute) Mutes MONO.
6 ZC 0 (OFF) Enables zero-cross detector
5:0 MONOVOL 000000 (0dB) MONO volume Analogue Inputs; Analogue Audio Outputs Register 08h controls the analogue output pin MONO and the analogue input pin MONOIN. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 L2H 1 (mute) Mutes LINE to headphone mixer paths
14 L2S 1 (mute) Mutes LINE to speaker mixer path
13 L2M 1 (mute) Mutes LINE to mono mixer path
12:8 LINELVOL 01000 (0dB) Controls LINEL input gain to all mixers (but not to ADC) 0Ah 4:0 LINERVOL 01000 (0dB) Controls LINER input gain to all mixers (but not to ADC) Analogue Inputs, Line Input Register 0Ah controls the analogue input pins LINEL and LINER. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 D2H 1 (mute) Mutes DAC to headphone mixer path
14 D2S 1 (mute) Mutes DAC to speaker mixer path
13 D2M 1 (mute) Mutes DAC to mono mixer path
12:8 DACLVOL 01000 (0dB) Controls left DAC input gain to all mixers 0Ch 4:0 DACRVOL 01000 (0dB) Controls right DAC input gain to all mixers Audio DACs Register 0Ch controls the audio DACs (but not AUXDAC). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 12:8 MICAVOL 01000 (0dB) Controls MICA PGA volume 0Eh 4:0 MICBVOL 01000 (0dB) Controls MICB PGA volume Analogue Inputs, Microphone Input Register 0Eh controls the microphone PGA volume (MICA and MICB). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
7 MA2M 1 (mute) Mutes MICA to mono mixer path
6 MB2M 1 (mute) Mutes MICB to mono mixer path
5 MIC2MBST 0 (OFF) Enables 20dB gain boost at mono mixer for MICA
4:3 MIC2H 11 (mute) Controls microphone to headphone mixer paths. 00=stereo, 01=MICA only, 10=MICB only, 11=mute MICA and MICB 10h 2:0 MIC2HVOL 010 (0dB) Controls gain of microphone to headphone mixer path Analogue Inputs, Microphone Input Register 10h controls the microphone routing (MICA and MICB).
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 RMU 1 (mute) Mutes audio ADC input
14 GRL 0 (standard) Selects gain range for PGA of left ADC. 0.75dB steps 13:8 RECVOLL 000000 (0dB) Controls left ADC recording volume
7 ZC 0 (OFF) Enables zero-cross detector
6 GRR 0 (standard) Selects gain range for PGA of left ADC. 0.75dB steps 12h 5:0 RECVOLR 000000 (0dB) Controls right ADC recording volume Audio ADC, Record Gain Register 12h controls the record volume. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 15:14 R2H 11 (mute) Controls record mux to headphone mixer paths. 00=stereo, 01=left ADC only, 10=right ADC only, 11=mute left and right 13:11 R2HVOL 010 (0dB) Controls gain of record mux l/r to headphone mixer paths 10:9 R2M 11 (mute) Controls record mux to mono mixer path. 00=stereo, 01=left rec mux only, 10=right rec mux only, 11=mute left and right
8 R2MBST 0 (OFF) Enables 20dB gain boost for record mux to mono
6 RECBST 0 (OFF) Enables 20dB gain boost for ADC record path
5:3 RECSL 000 (mic) Selects left record mux signal source: 000=MICA, 001=MICB, 010=LINEL, 011=MONOIN, 100=HPMIXL, 101=SPKMIC, 110=MONOMIX, 111=Z h 14h 2:0 RECSR 000 (mic) Selects right record mux signal source: 000=MICA, 001=MICB, 010=LINER, 011=MONOIN, 100=HPMIXR, 101=SPKMIC, 110=MONOMIX, 111=Z h Audio ADC, Record Selector Register 14h controls the.record selector and the ADC to mono mixer path. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 B2H 1 (mute) Mutes PCBEEP to headphone mixer paths
14:12 B2HVOL 010 (0dB) Controls gain of PC BEEP to headphone mixer paths
11 B2S 1 (mute) Mutes PCBEEP to speaker mixer path
10:8 B2SVOL 010 (0dB) Controls gain of PC BEEP to speaker mixer path
7 B2M 1 (mute) Mutes PCBEEP to mono mixer path
6:4 B2MVOL 010 (0dB) Controls gain of PC BEEP to mono mixer path Analogue Inputs, PCBEEP Input Register 16h controls the analogue input pin PCBEEP.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 V2H 1 (mute) Mutes VXDAC to headphone mixer paths
14:12 V2HVOL 010 (0dB) Controls gain of VXDAC to headphone mixer paths
11 V2S 1 (mute) Mutes VXDAC to speaker mixer path
10:8 V2SVOL 010 (0dB) Controls gain of VXDAC to speaker mixer path
7 V2M 1 (mute) Mutes VXDAC to mono mixer path
6:4 V2MVOL 010 (0dB) Controls gain of VXDAC to mono mixer path Audio Mixers, Side Tone Control Register 18h controls the output signal of the Voice DAC. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 A2H 1 (mute) Mutes AUXDAC to headphone mixer paths
14:12 A2HVOL 010 (0dB) Controls gain of AUXDAC to headphone mixer paths
11 A2S 1 (mute) Mutes AUXDAC to speaker mixer path
10:8 A2SVOL 010 (0dB) Controls gain of AUXDAC to speaker mixer path
7 A2M 1 (mute) Mutes AUXDAC to mono mixer path
6:4 A2MVOL 010 (0dB) Controls gain of AUXDAC to mono mixer path Auxiliary DAC Register 1Ah controls the output signal of the auxiliary DAC. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 15:14 MONO 00 (Z H) MONO PGA input select: 00=Vmid; 01=no i/p (Z H if buffer disabled); 10=MONOMIX; 11=INV1 13:11 SPKL 000 (ZH) SPKL PGA input select: 000=Vmid; 001=no i/p (Z H if buffer disabled); 010=HPMIXL; 011=SPKMIX; 100=INV1; 101-111=unused 10:8 SPKR 000 (ZH) SPKR PGA input select: 000=Vmid; 001=no i/p (Z H if buffer disabled); 010=HPMIXR; 011=SPKMIX; 100=INV2; 101-111=unused 7:6 HPL 00 (Z H) HPL PGA input select: 00=Vmid; 01=no i/p (Z H if buffer disabled); 10=HPMIXL; 11=unused 5:4 HPR 00 (Z H) HPR PGA input select: 00=Vmid; 01=no i/p (Z H if buffer disabled); 10=HPMIXR; 11=unused 3:2 OUT3 00 (Z H) OUT3 PGA input select: 00=Vmid; 01=no i/p (Z H if buffer disabled); 10=INV1; 11=unused 1Ch 1:0 OUT4 00 (Z H) OUT4 PGA input select: 00=Vmid; 01=no i/p (Z H if buffer disabled); 10=INV2; 11=unused Analogue Audio Outputs Register 1Ch controls the inputs to the output PGAs. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 15:13 INV1 000 (Z H) INV1 input select: 000=Z H (OFF – no source selected); 001=MONOMIX; 010=SPKMIX; 011=HPMIXL; 100=HPMIXR; 101=HPMIXMONO; 110=unused; 111=Vmid 12:10 INV2 000 (Z H) INV2 input select: 000=Z H (OFF – no source selected); 001=MONOMIX; 010=SPKMIX; 011=HPMIXL; 100=HPMIXR; 101=HPMIXMONO; 110=unused; 111=Vmid 5 3DLC 0 (low) Selects lower cut-off frequency 4 3DUC 0 (high) Selects upper cut-off frequency 1Eh 3:0 3DDEPTH 0000 (0%) Controls depth of 3D effect Audio DACs, 3D Stereo Enhancement; Analogue Audio Outputs Register 1Eh controls 3D stereo enhancement for the audio DACs and input muxes to the output inverters INV1 and INV2.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 BB 0 (linear) Selects linear bass control or adaptive bass boost
12 BC 0 (low) Selects bass cut-off frequency
11:8 BASS 1111 (OFF) Controls bass intensity
6 DAT 0 (OFF) Enables 6dB pre-DAC attenuation
4 TC 0 (high) Selects treble cut-off frequency
3:0 TRBL 1111 (OFF) Controls treble intensity Audio DACs, Tone Control / Bass Boost Register 20h controls the bass and treble response of the left and right audio DAC (but not AUXDAC). REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 15:14 MICCMPSEL 00 (mics) Selects input function for MIC2A/COMP1 and MIC2B/COMP2 13:12 MPASEL 00 (MIC1) Selects i nput to MICA preamp (from MIC1, MIC2A, MIC2B) 11:10 MPABST 00 ( 12dB) Controls MICA preamp gain boost 9:8 MPBBST 00 ( 12dB) Controls MICB preamp gain boost
7 MBOP2EN 0 (Off) Enables microphone bias output path to pin 12
6 MBOP1EN 1 (On) Enables microphone bias output path to MICBIAS
5 MBVOL 0 (0.9xAVDD) Selects microphone bias voltage 4:2 MCDTHR 000 (100uA) Controls microphone current detect threshold 22h 1:0 MCDSCTHR 00 (600uA) Controls microphone short-circuit detect threshold Analogue Inputs, Microphone Input Register 22h controls the microphone input configuration and microphone bias and detect configuration. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
4 JIEN 0 (OFF) Jack insert detect enable
3:2 DCDRVSEL 00 (AC) Output PGA source for headphone DC reference (default is AC coupled – no source selected) 24h 1:0 EARSPKSEL 00 Ear speaker source select (default is no source selected) Analogue Audio Outputs Register 24h controls the output volume mapping on headphone jack insertion. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
11 PR3 1 (OFF) Disables VREF, input PGAs, DACs, ADCs, mixers
3 REF 0 Read-only bit, indicates VREF is ready (inverse of
PR2)
2 ANL 0 Read-only bit, indicates analogue mixers are ready
(inverse of PR3) (inverse of PR1) 26h (inverse of PR0) Power Management Register 26h is for power management according to the AC’97 specification. Note that the actual state of many circuit blocks depends on both register 24h AND registers 3Ch and 3Eh.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 15:14 ID 00 Indicates that the WM9713L is configured as the primary codec in the system. 11:10 REV 01 Indicates that the WM9713L conforms to AC’97 Rev2.2
9 AMAP 0 Indicates that the WM9713L does not support slot
8 LDAC 0 Indicates that the WM9713L does not have an
7 SDAC 0 Indicates that the WM9713L does not have
6 CDAC 0 Indicates that the WM9713L does not have a
3 VRM 0 Indicates that the WM9713L does not have a
dedicated, variable rate microphone ADC
2 SPDIF 1 Indicates that the WM9713L supports SPDIF
1 DRA 0 Indicates that the WM9713L does not support
0 VRA 1 Indicates that the WM9713L supports variable rate
Intel’s AC’97 Component Specification, Revision 2.2, page 59 Register 28h is a read-only register that indicates to the driver which advanced AC’97 features the WM9713L supports. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
10 SPCV 1 (valid) SPDIF validity bit (read-only)
5:4 SPSA 01 (slots 6, 9) Controls SPDIF slot assignment. 00=slots 3 and 4,
2 SEN 0 (OFF) Enables SPDIF output enable
0 VRA 0 (OFF) Enables variable rate audio
(SPDIF) Output Register 2Ah controls the SPDIF output and variable rate audio. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 2Ch all DACSR BB80h Controls stereo DAC sample rate 2Eh all AUXDACSR BB80h Controls auxiliary DAC sample rate 32h all ADCSR BB80h Controls audio ADC sample rate Variable Rate Audio / Sample Rate Conversion Note: The VRA bit in register 2Ah must be set first to obtain sample rates other than 48kHz Registers 2Ch, 2Eh 32h and control the sample rates for the stereo DAC, auxiliary DAC and audio ADC, respectively.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 CTRL 0 (GPIO reg) Specifies how the PCM interface pins are
controlled. 14:13 MODE 10 (master mode) PCM interface mode when PCMCTRL=1
12 SWAP 0 (no swap) PCM data swap
11:9 DIV 010 (1/4) Voice DAC clock to PCMCLK divider reserved
7 CP 0 (normal) PCMCLK polarity
DSP Mode – mode A/B select 5:4 SEL 00 (LandR data) PCM ADC channel select 3:2 WL 10 (24 bits) PCM Data Word Length 36h 1:0 FMT 10 (I 2S) PCM Data Format Select PCM Codec Register 36h controls the PCM codec. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 V 0 Validity bit; ‘0’ indicates frame valid, ‘1’ indicates
double rate SPDIF output (read-only) 13:12 SPSR 10 Indicates that the WM 9713L only supports 48kHz sampling on the SPDIF output (read-only)
11 L 0 Generation level; programmed as required by user
10:4 CC 0000000 Category code; programmed as required by user
3 PRE 0 Pre-emphasis; ‘0’ indicates no pre-emphasis, ‘1’
indicates 50/15us pre-emphasis
2 COPY 0 Copyright; ‘0’ indicates copyright is not asserted,
‘1’ indicates copyright
1 AUDIB 0 Non-audio; ‘0’ indicates data is PCM, ‘1’ indicates
non-PCM format (e.g. DD or DTS) 3Ah
0 PRO 0 Professional; ‘0’ indicates consumer, ‘1’ indicates
(SPDIF) Output Register 3Ah controls the SPDIF output.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 PD15 1 (OFF) Touchpanel / PenADC power down
10 VREF 1 (OFF) Disables reference generator
7 DACL 1 (OFF) Disables left DAC
6 DACR 1 (OFF) Disables right DAC
1 SPKX 1 (OFF) Disables speaker mixer
- “0” corresponds to “ON”, if and only if the corresponding bit in register 26h is also 0. Register 3Ch is for power management additional to the AC’97 specification. Note that the actual state of each circuit block depends on both register 3Ch AND register 26h. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
14 MICBIAS 1 (OFF) Disables microphone bias
13 MONO 1 (OFF) Disables MONO output PGA
12 OUT4 1 (OFF) Disables OUT4 output PGA
11 OUT3 1 (OFF) Disables OUT3 output PGA
10 HPL 1 (OFF) Disables HPL output PGA
9 HPR 1 (OFF) Disables HPR output PGA
8 SPKL 1 (OFF) Disables SPKL output PGA
7 SPKR 1 (OFF) Disables SPKR output PGA
6 LL 1 (OFF) Disables LINEL PGA
5 LR 1 (OFF) Disables LINER PGA
4 MOIN 1 (OFF) Disables MONOIN PGA
3 MA 1 (OFF) Disables mic PGA MA
2 MB 1 (OFF) Disables mic PGA MB
- “0” corresponds to “ON”, if and only if the corresponding bit in register 26h is also 0. Register 3Eh is for power management additional to the AC’97 specification. Note that the actual state of each circuit block depends on both register 3Eh AND register 26h. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 13 3DE 0 (OFF) Enables 3D enhancement Audio DACs, 3D Stereo Enhancement 40h 7 LB 0 (OFF) Enables loopback (i.e. feed ADC output data directly into DAC) Intel’s AC’97 Component Specification, Revision 2.2, page 55 Register 40h is a “general purpose” register as defined by the AC’97 specification. Only two bits are implemented in the WM9713L.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
6 MONO 0 (Off) Enables fast power for MONO output
5 SPKL 0 (Off) Enables fast power for SPKL output
4 SPKR 0 (Off) Enables fast power for SPKR output
3 HPL 0 (Off) Enables fast power for HPL output
2 HPR 0 (Off) Enables fast power for HPR output
1 OUT3 0 (Off) Enables fast power for OUT3 output
0 OUT4 0 (Off) Enables fast power for OUT4 output
Outputs, Power-Up Register 42h controls power-up conditions for output PGAs. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 14:1 SEXT[6:4] 000 (div 1) Defines clock division ratio for Hi-fi block: 000=f; 11:8 S EXT[3:0] 0000 (div 1) Defines clock division ratio for PCM interface and voice DAC: 0000=f; 0001=f/1; … ; 1111=f/16
7 CLKSRC 1 (ext clk) Selects between PLL clock and External clock
5:3 PENDIV 000 (div 16) Sets PENADC clock divisor: 000=f/16; 001=f/12; 0 CLKMUX 0 (MCLKA) Selects between MCLKA and MCLKB (N.B. On power-up clock must be present on MCLKA and must be active for 2 clock cycles after switching to MCLKB) Clock Generation Register 44h controls clock division and muxing. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 15:1 N[3:0] 0000 PLL integer division control (must be set between 5- 12 for integer N mode)
11 LF 0 = off Allows PLL operation with low frequency input
clocks (< 8.192MHz) 10 SDM 0 Sigma Delta Modulator enable. Allows fractional N division 9 DIVSEL 0 = off Enables input clock to PLL to be divided by 2 or 4. Use if input clock is above 14.4MHz 8 DIVCTL 0 Controls division mode when DI VSEL is high. 0 = div by 2, 1= div by 4. 6:4 PGADDR 000 Pager address bits to access programming of K[21:0] and SPLL[7:0] 46h 3:0 PGDATA 0000 Pager data bits Analogue Audio Outputs, Power-Up Register 46h controls PLL clock generation.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 4Ch all 1 (all inputs) except unused bits Controls GPIO configuration as inputs or as outputs (note: virtual GPIOs can only be inputs) 4Eh all 1 Controls GPIO polarity (actual polarity depends on register 4Ch AND register 4Eh) 50h all 0 (not sticky) Makes GPIO signals sticky 52h all 0 (OFF) Enables wake-up for each GPIO signal 54h = status of GPIO inputs GPIO pin status (read from inputs, write ‘0’ to clear sticky bits)
15 Controls Comparator 1 signal (virtual GPIO)
14 Controls Comparator 2 signal (virtual GPIO)
13 Controls Pen-Down Detector signal (virtual GPIO)
12 Controls ADA signal (virtual GPIO)
11 Controls Thermal sensor signal (virtual GPIO)
10 Controls Microphone short detect (virtual GPIO)
9 Controls Microphone insert detect (virtual GPIO)
8 Controls GPIO8 (pin 3)
7 Controls GPIO7 (pin 11)
6 Controls GPIO6 (pin 12)
5 Controls GPIO5 (pin 48)
4 Controls GPIO4 (pin 47)
3 Controls GPIO3 (pin 46)
2 Controls GPIO2 (pin 45)
Controls GPIO1 (pin 44) GPIO and Interrupt Control Register 4Ch to 54h control the GPIO pins and virtual GPIO signals. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
8 GE8 1 (GPIO) Selects between GPIO8 and SPDIF_OUT function
7 GE7 1 (GPIO) Selects between GPIO7 and PENDOWN function
6 GE6 1 (GPIO) Selects between GPIO6 and ADA/MASK functions
5 GE5 1 (GPIO) Selects between GPIO5 and SPDIF_OUT function
4 GE4 1 (GPIO) Selects between GPIO4 and ADA/MASK functions
3 GE3 1 (GPIO) Selects between GPIO3 and PENDOWN function
2 GE2 1 (GPIO) Selects between GPIO2 and IRQ function for pin 45
Register 56h controls the use of GPIO pins for non-GPIO functions. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 15:8 PU 01000000 Enables weak pull-up on GPIO pins (1=On) 58h 7:0 PD 00000000 Enables weak pull-down on GPIO pins (1=On) GPIO and Interrupt Control Register 56h controls GPIO pull-up/down.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 15:13 COMP2DEL 000 (no delay) Selects Comparator 2 delay Battery Alarm
8 RSTDIS 0 (RESETB
enabled) Disables RESETB pin to enable use as a GPIO GPIO Interrupt and Control 7:6 JSEL 00 (GPIO1) Selects GPIO for jack insert detect: 00: GPIO1 01: GPIO6 10: GPIO7 11: GPIO8 Jack Insertion & Auto- Switching 5:4 HPMODE 00 HPF corner frequency 00: 7Hz @ Fs=48kHz 01: 82Hz @ Fs=16kHz 10: 82Hz @ Fs=8kHz 11: 170Hz @ Fs=8kHz Audio ADCs 3:2 DIE REV Indicates device revision. 00=Rev.A, 01=Rev.B, 10=Rev.C N/A
1 WAKEEN 0 (no wake-up) Enables GPIO wake-up
0 IRQ INV 0 (not inverted) Inverts the IRQ signal (pin 45)
GPIO and Interrupt Control Register 5Ah controls several additional functions. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
15 AMUTE 0 Read-only bit to indicate DAC auto-
Audio DACs, Stereo DACs
14 C1REF 0 (AVDD/2) Selects Comparator 1 Reference
13:12 C1SRC 00 (OFF) Selects Comparator 1 Signal Source
11 C2REF 0 (AVDD/2) Selects Comparator 1 Reference
10:9 C2SRC 00 (OFF) Selects Comparator 1 Signal Source Battery Alarm
7 AMEN 0 (OFF) Enables DAC Auto-Mute
6:5 VBIAS 00 Selects analogue bias for lowest power, depending on AVDD supply. Power Management 4 ADCO 0 Selects source of SPDIF data. 0=from SDATAOUT, 1= from audio ADC Digital Audio (SPDIF) Output
3 HPF 0 Disables ADC high-pass filter Audio ADC
1:0 ASS 00 Selects time slots for stereo ADC data. 00=slots 3 and 4, 01=7/8, 10=6/9, 11=10/11 Audio ADC, ADC Slot Mapping Register 5Ch controls several additional functions.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 100 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 15:12 ALCL 1011 (-12dB) Controls ALC threshold 11:8 HLD 0000 (0 ms) Controls ALC hold time 7:4 DCY 0011 (192 ms) Controls ALC decay time 60h 3:0 ATK 0010 (24 ms) Controls ALC attack time 15:14 ALCSEL 00 (OFF) Controls which channel ALC operates on. 00=none, 01=right only, 10=left only, 11=both 13:11 MAXGAIN 111 (+30dB) Controls upper gain limit for ALC 10:9 ZC TIMEOUT 11 (slowest) Controls time-out for zero-cross detection
8 ALCZC 0 (OFF) Enables zero-cross detection for ALC
7 NGAT 0 (OFF) Enables noise gate function
5 NGG 0 (hold gain) Selects noise gate type. 0=hold gain, 1=mute 62h 4:0 NGTH 00000 (-76.5dB) Controls noise gate threshold Audio ADC, Automatic Level Control Registers 60h and 62h control the ALC and Noise Gate functions. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 15 XSLE 0 Selects input for AUXDAC. 0=from AUXDACVAL (for DC signals), 1=from AC-Link slot (for AC signals) 14:12 AUXDACSLT 000 (Slot 5) Selects input slot for AUXDAC (with XSLE=1) 64h 11:0 AUXDACVAL 000000000 AUXDAC Digital Input for AUXDAC (with XSLE=0). 000h= minimum, FFFh=full-scale Auxiliary DAC Register 64h controls the input signal of the auxiliary DAC.
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 101 REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO
9 POLL 0 Writing “1” initiates a measurement (when CTC is
not set)
8 CTC 0 0=Polling mode; 1=Continuous mode (for DMA)
7 ADCSEL_AUX4 0 Enable COMP1/AUX4 measurement (pin32)
6 ADCSEL_AUX3 0 Enable COMP1/AUX3 measurement (pin31)
5 ADCSEL_AUX2 0 Enable COMP1/AUX2 measurement (pin30)
4 ADCSEL_AUX1 0 Enable COMP1/AUX1 measurement (pin29)
3 ADCSEL_PRES
0 Enable touchpanel pressure measurement
2 ADCSEL_Y 0 Enable touchpanel Y co-ord measurement
1 ADCSEL_X 0 Enable touchpanel X co-ord measurement
0 COO 0 (OFF) Enables co-ordinate mode
9:8 CR 00 (93.75Hz) Controls conversion rate in continuous mode 7:4 DEL 0000 (20.8 µs) Controls touchpanel settling time
3 SLEN 1 Enables slot readback of touchpanel data
2:0 SLT 110 (slot 11) Selects time slot for readback of touchpanel data 15:14 PRP 00 Selects mode of operation. 00=OFF, 01=pen detect with wake-up, 10=pen detect without wake-up, 11=running 13 RPR 0 Selects wake-up mode. 0=AC-Link only, 1=AC-Link and WM9713L auto-wake-up 12 45W 0 (4-wire) Selects 4-wire or 5-wire touchpanel 11 PDEN 0 (always) Selects when touchpanel measurements take place. 0=always, 1=only when pen is down
10 PDPOL 0 PENDOWN polarity: 0=non-inverted; 1=inverted
9 WAIT 0 Controls data readback from register 7Ah. 0=overwrite old data with new, 1=wait until old data has been read 8 PIL 0 (200 µA) Controls current used for pressure measurement. 1=400µA 7:6 MSK 00 (OFF) Controls MASK feature 78h 5:0 RPU 000001 (64kΩ) Controls internal pull-up resistor for pen-down detection 15 PNDN 0 (pen up) Indicates pen status. 14:12 ADCSRC 000 (none) Indicates measurement type 7Ah read only 11:0 ADCD 000h Returns data from touchpanel / AUXADC Touchpanel Interface Registers 76h, 78h and 7Ah control the touchpanel interface. REGISTER ADDRESS BIT LABEL DEFAULT DESCRIPTION REFER TO 15:8 F7:0 57h ASCII character “W” for Wolfson 7Ch 7:0 S7:0 4Dh ASCII character “M” 15:8 T7:0 4Ch ASCII character “L” 7Eh 7:0 REV7:0 12h 12 for WM9713L Intel’s AC’97 Component Specification, Revision 2.2, page 50 Register 7Ch and 7Eh are read-only registers that indicate to the driver that the codec is a WM9713L.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 102 APPLICATIONS INFORMATION RECOMMENDED EXTERNAL COMPONENTS Recommended External Component Diagram -TBA LINE OUTPUT The headphone outputs, HPL and HPR, can be used as stereo line outputs. The speaker outputs, SPKL and SPKR, can also be used as line outputs. Recomm ended external components are shown below. Figure 34 Recommended Circuit for Line Output The DC blocking capacitors and the load resistance together determine the lower cut-off frequency, fc. Assuming a 10 kΩ load and C1, C2 = 10µF: fc = 1 / 2π (RL+R1) C1 = 1 / (2π x 10.1kΩ x 1µF) = 16 Hz Increasing the capacitance lowers fc, improving the bass response. Smaller values of C1 and C2 will diminish the bass response. The function of R1 and R2 is to protect the line outputs from damage when used improperly.
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 108 Figure 43 Mono Speaker Output Configuration
WM9713L Preliminary Technical Data PTD, March 2004, Rev 2.2 110 PACKAGE DIMENSIONS e DM029.CFL: 48 PIN QFN PLASTIC PACKAGE 7 X 7 X 0.9 mm BODY, 0.50 mm LEAD PITCH INDEX AREA (D/2 X E/2) TOP VIEW Caaa2 X SEE DETAIL 2 E2/2 b L D2/2 Caaa2 X 37 48 D E e Datum SEE DETAIL 1 C0.08 Cccc A A1C (A3) SEATING PLANE DETAIL 3 DETAIL 3 DETAIL 2 Terminal tip R e/2 1 DETAIL 1 0.35mm 45degrees (A3) G T H W b Exposed lead Half etch tie bar Symbols Dimensions (mm) MIN NOM MAX NOTE A b D E e L 0.80 0.90 1.00 0.300.250.18
7.00 BSC
5.255.155.00
0.5 BSC
5.15 5.255.00 0.30 0.4 0.50 0 0.02 0.05
0.20 REF
G H 0.213 0.1 NOTES: 1. DIMENSION b APPLIED TO METALLIZED TERMINAL AND IS MEASURED BETWEEN 0.15 mm AND 0.30 mm FROM TERMINAL TIP. 2. ALL DIMENSIONS ARE IN MILLIMETRES 3. THE TERMINAL #1 IDENTIFIER AND TERMINAL NUMBERING CONVENTION SHALL CONFORM TO JESD 95-1 SPP-002. 4. COPLANARITY APPLIES TO THE EXPOSED HEAT SINK SLUG AS WELL AS THE TERMINALS. 5. THIS DRAWING IS SUBJECT TO CHANGE WITHOUT NOTICE. JEDEC, MO-220, VARIATION VKKD-2 Tolerances of Form and Position T W aaa bbb ccc 0.1 0.2 0.15 0.10 0.10 REF
Preliminary Technical Data WM9713L PTD, March 2004, Rev 2.2 111 IMPORTANT NOTICE Wolfson Microelectronics plc (WM) reserve the right to make changes to their products or to discontinue any product or service without notice, and advise customers to obtain the latest version of relevant information to verify, before placing orders, that information being relied on is current. All products are sold subject to the WM terms and conditions of sale supplied at the time of order acknowledgement, including those pertaining to warranty, patent infringement, and limitation of liability. WM warrants performance of its products to the specifications applicable at the time of sale in accordance with WM’s standard warranty. Testing and other quality control techniques are utilised to the extent WM deems necessary to support this warranty. Specific testing of all parameters of each device is not necessarily performed, except those mandated by government requirements. In order to minimise risks associated with customer applications, adequate design and operating safeguards must be used by the customer to minimise inherent or procedural hazards. Wolfson products are not authorised for use as critical components in life support devices or systems without the express written approval of an officer of the company. Life support devices or systems are devices or systems that are intended for surgical implant into the body, or support or sustain life, and whose failure to perform when properly used in accordance with instructions for use provided, can be reasonably expected to result in a significant injury to the user. A critical component is any component of a life support device or system whose failure to perform can be reasonably expected to cause the failure of the life support device or system, or to affect its safety or effectiveness. WM assumes no liability for applications assistance or customer product design. WM does not warrant or represent that any license, either express or implied, is granted under any patent right, copyright, mask work right, or other intellectual property right of WM covering or relating to any combination, machine, or process in which such products or services might be or are used. WM’s publication of information regarding any third party’s products or services does not constitute WM’s approval, license, warranty or endorsement thereof. Reproduction of information from the WM web site or datasheets is permissible only if reproduction is without alteration and is accompanied by all associated warranties, conditions, limitations and notices. Representation or reproduction of this information with alteration voids all warranties provided for an associated WM product or service, is an unfair and deceptive business practice, and WM is not responsible nor liable for any such use. Resale of WM’s products or services with statements different from or beyond the parameters stated by WM for that product or service voids all express and any implied warranties for the associated WM product or service, is an unfair and deceptive business practice, and WM is not responsible nor liable for any such use. ADDRESS: Wolfson Microelectronics plc Westfield House Westfield Road Edinburgh EH11 2QB United Kingdom Tel :: +44 (0)131 272 7000 Fax :: +44 (0)131 272 7001 Email :: sales@wolfsonmicro.com