DATASHEET SEARCH SITE | WWW.ALLDATASHEET.COM
Document overview
- Manufacturer or author: Provided By ALLDATASHEET.COM(FREE DATASHEET DOWNLOAD SITE)
- PDF pages: 32
Technical content
4 ADC/8 DAC with PLL,
192 kHz, 24-Bit Codec Data Sheet AD1939 Rev. E Document Feedback Information furnished by Analog Devices is believed to be accurate and reliable. However, no responsibility is assumed by Analog Devices for its use, nor for any infringements of patents or other rights of third parties that may result from its use. Specifications subject to change without notice. No license is granted by implication or otherwise under any patent or patent rights of Analog Devices. Trademarks and registered trademarks are the property of their respective owners. Tel: 781.329.4700 ©2006–2013 Analog Devices, Inc. All rights reserved. Technical Support www.analog.com
FEATURES
PLL generated or direct master clock Low EMI design 112 dB DAC/107 dB ADC dynamic range and SNR −94 dB THD + N Single 3.3 V supply Tolerance for 5 V logic inputs Supports 24-bits and 8 kHz to 192 kHz sample rates Differential ADC input Differential DAC output Log volume control with autoramp function SPI controllable for flexibility Software-controllable clickless mute Software power-down Right-justified, left-justified, I2S, and TDM modes Master and slave modes up to 16-channel input/output 64-lead LQFP package Qualified for automotive applications
APPLICATIONS
Digital audio effects processors GENERAL DESCRIPTION The AD1939 is a high performance, single-chip codec that provides four analog-to-digital converters (ADCs) with differential input, and eight digital-to-analog converters (DACs) with differential output using the Analog Devices, Inc. patented multibit sigma-delta (Σ-Δ) architecture. An SPI port is included, allowing a microcontroller to adjust volume and many other parameters. The AD1939 operates from 3.3 V digital and analog supplies. The AD1939 is available in a 64-lead (differential output) LQFP package. The AD1939 is designed for low EMI. This consideration is apparent in both the system and circuit design architectures. By using the on-board PLL to derive the master clock from the LR clock or from an external crystal, the AD1939 eliminates the need for a separate high frequency master clock and can also be used with a suppressed bit clock. The DACs and ADCs are designed using the latest Analog Devices continuous time architectures to further minimize EMI. By using 3.3 V supplies, power consumption is minimized, further reducing emissions. FUNCTIONAL BLOCK DIAGRAM DIGITAL FILTER SERIAL DATA PORT DIGITAL AUDIO INPUT/OUTPUT PRECISION VOLTAGE REFERENCE TIMING MANAGEMENT AND CONTROL (CLOCK AND PLL) SPI CONTROL PORT CONTROL DATA INPUT/OUTPUT AD1939 ADC ADC ADC ADC ANALOG AUDIO INPUTS ANALOG AUDIO OUTPUTS DAC DAC DAC DAC DAC DAC DAC DAC DIGITAL FILTER AND VOLUME CONTROL SDATA OUT SDATA IN CLOCKS 06071-001 Figure 1.
Rev. E | Page 2 of 32 TABLE OF CONTENTS
REVISION HISTORY
2/13—Rev. D to Rev. E 7/11—Rev. C to Rev. D 9/10—Rev. B to Rev. C Added Qualified for Automotive Applications to the Features 3/10—Rev. A to Rev. B 6/07—Rev. 0 to Rev. A 7/06—Revision 0: Initial Version
Rev. E | Page 3 of 32 SPECIFICATIONS TEST CONDITIONS Performance of all channels is identical, exclusive of the interchannel gain mismatch and interchannel phase deviation specifications. Supply voltages (AVDD, DVDD) 3.3 V Temperature range1 As specified in Table 1 and Table 2 Master clock 12.288 MHz (48 kHz fS, 256 × fS mode) Input sample rate 48 kHz Measurement bandwidth 20 Hz to 20 kHz Word width 24 bits Load capacitance (digital output) 20 pF Load current (digital output) ±1 mA or 1.5 kΩ to ½ DVDD supply Input voltage high 2.0 V Input voltage low 0.8 V 1 Functionally guaranteed at −40°C to +125°C case temperature. ANALOG PERFORMANCE SPECIFICATIONS Specifications guaranteed at an ambient temperature of 25°C. Table 1. Parameter Conditions/Comments Min Typ Max Unit ANALOG-TO-DIGITAL CONVERTERS ADC Resolution All ADCs 24 Bits Dynamic Range 20 Hz to 20 kHz, −60 dB input No Filter (RMS) 96 102 dB With A-Weighted Filter (RMS) 98 105 dB Total Harmonic Distortion + Noise −1 dBFS −96 −87 dB Full-Scale Input Voltage (Differential) 1.9 V rms Gain Error −10 +10 % Interchannel Gain Mismatch −0.25 +0.25 dB Offset Error −10 0 +10 mV Gain Drift 100 ppm/°C Interchannel Isolation −110 dB CMRR 100 mV rms, 1 kHz 55 dB 100 mV rms, 20 kHz 55 dB Input Resistance 14 kΩ Input Capacitance 10 pF Input Common-Mode Bias Voltage 1.5 V DIGITAL-TO-ANALOG CONVERTERS Dynamic Range 20 Hz to 20 kHz, −60 dB input No Filter (RMS) 102 107 dB With A-Weighted Filter (RMS) 105 110 dB With A-Weighted Filter (Average) 112 dB Total Harmonic Distortion + Noise 0 dBFS Two channels running −94 dB Eight channels running −86 −76 dB Full-Scale Output Voltage 1.76 (4.96) V rms (V p-p) Gain Error −10 +10 % Interchannel Gain Mismatch −0.2 +0.2 dB Offset Error −25 −6 +25 mV Gain Drift −30 +30 ppm/°C Interchannel Isolation 100 dB
Rev. E | Page 4 of 32 Parameter Conditions/Comments Min Typ Max Unit Interchannel Phase Deviation 0 Degrees Volume Control Step 0.375 dB Volume Control Range 95 dB De-emphasis Gain Error ±0.6 dB Output Resistance at Each Pin 100 Ω REFERENCE Internal Reference Voltage FILTR pin 1.50 V External Reference Voltage FILTR pin 1.32 1.50 1.68 V Common-Mode Reference Output CM pin 1.50 V REGULATOR Input Supply Voltage VSUPPLY pin 4.5 5 5.5 V Regulated Output Voltage VSENSE pin 3.19 3.37 3.55 V Specifications measured at a case temperature of 125°C. Table 2. Parameter Conditions/Comments Min Typ Max Unit ANALOG-TO-DIGITAL CONVERTERS ADC Resolution All ADCs 24 Bits Dynamic Range 20 Hz to 20 kHz, −60 dB input No Filter (RMS) 93 102 dB With A-Weighted Filter (RMS) 96 104 dB Total Harmonic Distortion + Noise −1 dBFS −96 −87 dB Full-Scale Input Voltage (Differential) 1.9 V rms Gain Error −10 +10 % Interchannel Gain Mismatch −0.25 +0.25 dB Offset Error −10 0 +10 mV DIGITAL-TO-ANALOG CONVERTERS Dynamic Range 20 Hz to 20 kHz, −60 dB input No Filter (RMS) 101 107 dB With A-Weighted Filter (RMS) 104 110 dB With A-Weighted Filter (Average) 112 dB Total Harmonic Distortion + Noise 0 dBFS Two channels running −94 dB Eight channels running −86 −70 dB Full-Scale Output Voltage 1.76 (4.96) V rms (V p-p) Gain Error −10 +10 % Interchannel Gain Mismatch −0.2 +0.2 dB Offset Error −25 −6 +25 mV Gain Drift −30 +30 ppm/°C REFERENCE Internal Reference Voltage FILTR pin 1.50 V External Reference Voltage FILTR pin 1.32 1.50 1.68 V Common-Mode Reference Output CM pin 1.50 V REGULATOR Input Supply Voltage VSUPPLY pin 4.5 5 5.5 V Regulated Output Voltage VSENSE pin 3.2 3.43 3.65 V CRYSTAL OSCILLATOR SPECIFICATIONS Table 3. Parameter Min Typ Max Unit Transconductance 3.5 mmhos
Rev. E | Page 5 of 32 DIGITAL INPUT/OUTPUT SPECIFICATIONS Table 4. Parameter Conditions/Comments Min Typ Max Unit High Level Input Voltage (VIH) 2.0 V MCLKI/XI pin 2.2 V Low Level Input Voltage (VIL) 0.8 V Input Leakage IIH @ VIH = 2.4 V 10 µA IIL @ VIL = 0.8 V 10 µA High Level Output Voltage (VOH) IOH = 1 mA DVDD − 0.60 V Low Level Output Voltage (VOL) IOL = 1 mA 0.4 V Input Capacitance 5 pF POWER SUPPLY SPECIFICATIONS Table 5. Parameter Conditions/Comments Min Typ Max Unit SUPPLIES Voltage DVDD 3.0 3.3 3.6 V AVDD 3.0 3.3 3.6 V VSUPPLY 4.5 5.0 5.5 V Digital Current Master clock = 256 fS Normal Operation fS = 48 kHz 56 mA fS = 96 kHz 65 mA fS = 192 kHz 95 mA Power-Down fS = 48 kHz to 192 kHz 2.0 mA Analog Current Normal Operation 74 mA Power-Down 23 mA DISSIPATION Operation Master clock = 256 fS, 48 kHz All Supplies 429 mW Digital Supply 185 mW Analog Supply 244 mW Power-Down, All Supplies 83 mW POWER SUPPLY REJECTION RATIO Signal at Analog Supply Pins 1 kHz, 200 mV p-p 50 dB 20 kHz, 200 mV p-p 50 dB
Rev. E | Page 6 of 32 DIGITAL FILTERS Table 6. Parameter Mode Factor Min Typ Max Unit ADC DECIMATION FILTER All modes, typical @ 48 kHz Pass Band 0.4375 fS 21 kHz Pass-Band Ripple ±0.015 dB Transition Band 0.5 fS 24 kHz Stop Band 0.5625 fS 27 kHz Stop-Band Attenuation 79 dB Group Delay 22.9844/fS 479 µs DAC INTERPOLATION FILTER Pass Band 48 kHz mode, typical @ 48 kHz 0.4535 fS 22 kHz 96 kHz mode, typical @ 96 kHz 0.3646 fS 35 kHz 192 kHz mode, typical @ 192 kHz 0.3646 fS 70 kHz Pass-Band Ripple 48 kHz mode, typical @ 48 kHz ±0.01 dB 96 kHz mode, typical @ 96 kHz ±0.05 dB 192 kHz mode, typical @ 192 kHz ±0.1 dB Transition Band 48 kHz mode, typical @ 48 kHz 0.5 fS 24 kHz 96 kHz mode, typical @ 96 kHz 0.5 fS 48 kHz 192 kHz mode, typical @ 192 kHz 0.5 fS 96 kHz Stop Band 48 kHz mode, typical @ 48 kHz 0.5465 fS 26 kHz 96 kHz mode, typical @ 96 kHz 0.6354 fS 61 kHz 192 kHz mode, typical @ 192 kHz 0.6354 fS 122 kHz Stop-Band Attenuation 48 kHz mode, typical @ 48 kHz 70 dB 96 kHz mode, typical @ 96 kHz 70 dB 192 kHz mode, typical @ 192 kHz 70 dB Group Delay 48 kHz mode, typical @ 48 kHz 25/fS 521 µs 96 kHz mode, typical @ 96 kHz 11/fS 115 µs 192 kHz mode, typical @ 192 kHz 8/fS 42 µs TIMING SPECIFICATIONS Table 7. Parameter Condition Comments Min Max Unit INPUT MASTER CLOCK (MCLK) AND RESET tMH MCLK duty cycle DAC/ADC clock source = PLL clock @ 256 fS, 384 fS, 512 fS, and 768 fS 40 60 % tMH DAC/ADC clock source = direct MCLK @ 512 fS (bypass on-chip PLL) 40 60 % fMCLK MCLK frequency PLL mode, 256 fS reference 6.9 13.8 MHz fMCLK Direct 512 fS mode 27.6 MHz tPDR Low 15 ns tPDRR Recovery Reset to active output 4096 tMCLK PLL Lock Time MCLK and LRCLK input 10 ms 256 fS VCO Clock, Output Duty Cycle, MCLKO/XO Pin 40 60 %
Rev. E | Page 7 of 32 Parameter Condition Comments Min Max Unit SPI PORT See Figure 11 tCCH CCLK high 35 ns tCCL CCLK low 35 ns fCCLK CCLK frequency fCCLK = 1/tCCP; only tCCP shown in Figure 11 10 MHz tCDS CIN setup To CCLK rising 10 ns tCDH CIN hold From CCLK rising 10 ns tCLS CLATCH setup To CCLK rising 10 ns tCLH CLATCH hold From CCLK falling 10 ns tCLHIGH CLATCH high Not shown in Figure 11 10 ns tCOE COUT enable From CCLK falling 30 ns tCOD COUT delay From CCLK falling 30 ns tCOH COUT hold From CCLK falling, not shown in Figure 11 30 ns tCOTS COUT tristate From CCLK falling 30 ns DAC SERIAL PORT See Figure 24 tDBH DBCLK high Slave mode 10 ns tDBL DBCLK low Slave mode 10 ns tDLS DLRCLK setup To DBCLK rising, slave mode 10 ns tDLH DLRCLK hold From DBCLK rising, slave mode 5 ns tDLS DLRCLK skew From DBCLK falling, master mode −8 +8 ns tDDS DSDATA setup To DBCLK rising 10 ns tDDH DSDATA hold From DBCLK rising 5 ns ADC SERIAL PORT See Figure 25 tABH ABCLK high Slave mode 10 ns tABL ABCLK low Slave mode 10 ns tALS ALRCLK setup To ABCLK rising, slave mode 10 ns tALH ALRCLK hold From ABCLK rising, slave mode 5 ns tALS ALRCLK skew From ABCLK falling, master mode −8 +8 ns tABDD ASDATA delay From ABCLK falling 18 ns AUXILIARY INTERFACE tAXDS AAUXDATA setup To AUXBCLK rising 10 ns tAXDH AAUXDATA hold From AUXBCLK rising 5 ns tDXDD DAUXDATA delay From AUXBCLK falling 18 ns tXBH AUXBCLK high 10 ns tXBL AUXBCLK low 10 ns tDLS AUXLRCLK setup To AUXBCLK rising 10 ns tDLH AUXLRCLK hold From AUXBCLK rising 5 ns
θJC represents the thermal resistance, junction-to-case. All characteristics are for a 4-layer board. Table 9. Thermal Resistance
Figure 2. 64-Lead LQFP, Differential Output, Pin Configuration Table 10. Pin Function Descriptions 2 I MCLKI/XI Master Clock Input/Crystal Oscillator Input. 3 O MCLKO/XO Master Clock Output/Crystal Oscillator Output. 5 I AVDD Analog Power Supply. Connect to analog 3.3 V supply. 6 O OL3P DAC 3 Left Positive Output. 7 O OL3N DAC 3 Left Negative Output. 8 O OR3P DAC 3 Right Positive Output. 9 O OR3N DAC 3 Right Negative Output. 10 O OL4P DAC 4 Left Positive Output. 11 O OL4N DAC 4 Left Negative Output. 12 O OR4P DAC 4 Right Positive Output.
13 O OR4N DAC 4 Right Negative Output
14 I PD/ RST Power-Down Reset (Active Low). mode)/AUX DAC2 data out (to external DAC2). 17 I DVDD Digital Power Supply. Connect to digital 3.3 V supply. mode)/AUX ADC2 data in (from external ADC2). data in (from external ADC1). 20 I DSDATA1 DAC Serial Data Input 1. Data input to DAC1 data in/TDM DAC data in/TDM data in. 21 I/O DBCLK Bit Clock for DACs. 22 I/O DLRCLK LR Clock for DACs.
Rev. E | Page 10 of 32 Pin No. In/Out Mnemonic Description 23 I VSUPPLY 5 V Input to Regulator, Emitter of Pass Transistor. 24 I VSENSE 3.3 V Output of Regulator, Collector of Pass Transistor. 25 O VDRIVE Drive for Base of Pass Transistor. 26 I/O ASDATA2 ADC Serial Data Output 2. Data Output from ADC2/TDM ADC data in/AUX DAC1 data out (to external DAC1). 27 O ASDATA1 ADC Serial Data Output 1. Data Output from ADC1/TDM ADC data out/TDM data out. 28 I/O ABCLK Bit Clock for ADCs. 29 I/O ALRCLK LR Clock for ADCs. 30 I CIN Control Data Input (SPI). 31 I/O COUT Control Data Output (SPI). 32 I DVDD Digital Power Supply. Connect to digital 3.3 V supply. 33 I DGND Digital Ground. 34 I CCLK Control Clock Input (SPI). 35 I CLATCH Latch Input for Control Data (SPI). 36 O OL1P DAC 1 Left Positive Output. 37 O OL1N DAC 1 Left Negative Output. 38 O OR1P DAC 1 Right Positive Output. 39 O OR1N DAC 1 Right Negative Output. 40 O OL2P DAC 2 Left Positive Output. 41 O OL2N DAC 2 Left Negative Output. 42 O OR2P DAC 2 Right Positive Output. 43 O OR2N DAC 2 Right Negative Output. 44 I AGND Analog Ground. 45 I AVDD Analog Power Supply. Connect to analog 3.3 V supply. 46 I AGND Analog Ground. 47 O FILTR Voltage Reference Filter Capacitor Connection. Bypass with 10 µF||100 nF to AGND. 48 I AGND Analog Ground. 49 NC No Connect. 50 NC No Connect. 51 I AVDD Analog Power Supply. Connect to analog 3.3 V supply. 52 O CM Common-Mode Reference Filter Capacitor Connection. Bypass with 47 µF||100 nF to AGND. 53 I ADC1LP ADC1 Left Positive Input. 54 I ADC1LN ADC1 Left Negative Input. 55 I ADC1RP ADC1 Right Positive Input. 56 I ADC1RN ADC1 Right Negative Input. 57 I ADC2LP ADC2 Left Positive Input. 58 I ADC2LN ADC2 Left Negative Input. 59 I ADC2RP ADC2 Right Positive Input. 60 I ADC2RN ADC2 Right Negative Input. 61 O LF PLL Loop Filter, Return to AVDD. 62 I AVDD Analog Power Supply. Connect to analog 3.3 V supply. 63 NC No Connect. 64 NC No Connect.
Rev. E | Page 13 of 32 THEORY OF OPERATION ANALOG-TO-DIGITAL CONVERTERS (ADCS) There are four analog-to-digital converter (ADC) channels in the AD1939 configured as two stereo pairs with differential inputs. The ADCs can operate at a nominal sample rate of 48 kHz, 96 kHz, or 192 kHz. The ADCs include on-board digital anti- aliasing filters with 79 dB stop-band attenuation and linear phase response, operating at an oversampling ratio of 128 (48 kHz, 96 kHz, and 192 kHz modes). Digital outputs are supplied through two serial data output pins (one for each stereo pair) and a common frame clock (ALRCLK) and bit clock (ABCLK). Alternatively, one of the TDM modes can be used to access up to 16 channels on a single TDM data line. The ADCs must be driven from a differential signal source for best performance. The input pins of the ADCs connect to internal switched capacitors. To isolate the external driving op amp from the glitches caused by the internal switched capacitors, each in- put pin should be isolated by using a series-connected external 100 Ω resistor together with a 1 nF capacitor connected from each input to ground. This capacitor must be of high quality, for example, ceramic NP0 or polypropylene film. The differential inputs have a nominal common-mode voltage of 1.5 V . The voltage at the common-mode reference pin (CM) can be used to bias external op amps to buffer the input signals (see the Power Supply and Voltage Reference section). The inputs can also be ac-coupled and do not need an external dc bias to CM. A digital high-pass filter can be switched in line with the ADCs under serial control to remove residual dc offsets. It has a 1.4 Hz, 6 dB per octave cutoff at a 48 kHz sample rate. The cutoff fre- quency scales directly with sample frequency. DIGITAL-TO-ANALOG CONVERTERS (DACS) The AD1939 digital-to-analog converter (DAC) channels are arranged as differential, four stereo pairs giving eight analog outputs for improved noise and distortion performance. The DACs include on-board digital reconstruction filters with 70 dB stop-band attenuation and linear phase response, operating at an oversampling ratio of 4 (48 kHz or 96 kHz modes) or 2 (192 kHz mode). Each channel has its own independently programmable attenuator, adjustable in 255 steps in increments of 0.375 dB. Digital inputs are supplied through four serial data input pins (one for each stereo pair) and a common frame clock (DLRCLK) and bit clock (DBCLK). Alternatively, one of the TDM modes can be used to access up to 16 channels on a single TDM data line. Each output pin has a nominal common-mode dc level of 1.5 V and swings ±1.27 V for a 0 dBFS digital input signal. A single op amp, third-order, external, low-pass filter is recommended to remove high frequency noise present on the output pins, as well as to provide differential-to-single-ended conversion in the case of the differential output. Note that the use of op amps with low slew rate or low bandwidth can cause high frequency noise and tones to fold down into the audio band; exercise care in selecting these components. The voltage at CM, the common-mode reference pin, can be used to bias the external op amps that buffer the output signals (see the Power Supply and Voltage Reference section). CLOCK SIGNALS The on-chip phase-locked loop (PLL) can be selected to reference the input sample rate from either of the LRCLK pins or 256, 384, 512, or 768 times the sample rate, referenced to the 48 kHz mode from the MCLKI/XI pin. The default at power-up is 256 × f S from the MCLKI/XI pin. In 96 kHz mode, the master clock frequency stays at the same absolute frequency; therefore, the actual multiplication rate is divided by 2. In 192 kHz mode, the actual multiplication rate is divided by 4. For example, if a device in the AD1939 family is programmed in 256 × f S mode, the frequency of the master clock input is 256 × 48 kHz = 12.288 MHz. If the AD1939 is then switched to 96 kHz operation (by writing to the SPI port), the frequency of the master clock should remain at 12.288 MHz, which is 128 × fS in this example. In 192 kHz mode, this becomes 64 × fS. The internal clock for the ADCs is 256 × fS for all clock modes. The internal clock for the DACs varies by mode: 512 × fS (48 kHz mode), 256 × fS (96 kHz mode), or 128 × fS (192 kHz mode). By default, the on-board PLL generates this internal master clock from an external clock. A direct 512 × fS (referenced to 48 kHz mode) master clock can be used for either the ADCs or DACs if selected in the PLL and Clock Control 1 register. Note that it is not possible to use a direct clock for the ADCs set to the 192 kHz mode. It is required that the on-chip PLL be used in this mode. The PLL can be powered down in the PLL and Clock Control 0 register. To ensure reliable locking when changing PLL modes, or if the reference clock is unstable at power-on, power down the PLL and then power it back up when the reference clock stabilizes. The internal master clock (MCLK) can be disabled in the PLL and Clock Control 0 register to reduce power dissipation when the AD1939 is idle. The clock should be stable before it is enabled. Unless a standalone mode is selected (see the Serial Control Port section), the clock is disabled by reset and must be enabled by writing to the SPI port for normal operation. To maintain the highest performance possible, limit the clock jitter of the internal master clock signal to less than a 300 ps rms time interval error (TIE). Even at these levels, extra noise or tones can appear in the DAC outputs if the jitter spectrum contains large spectral peaks. If the internal PLL is not used, it is best to use an independent crystal oscillator to generate the
depending on the loop filter. ADCs and DACs. Figure 11 shows the format of the SPI signal. Table 11. Standalone Mode Selection Figure 11. Format of the SPI Signal
supply pins are provided for the analog and digital sections. obtained with separate supplies for the analog and digital sections. VSUPPLY , VDRIVE, and VSENSE to DGND. All digital inputs are compatible with TTL and CMOS levels. compatible with TTL and 3.3 V CMOS levels. external current drawn should be limited to less than 50 μA. level of a power amplifier based on its power supply voltage. from ADC input to DAC output remains constant. less than 0.5 mA source and 2 mA sink. serial ports are in the slave mode.
256 BCLKs
32 BCLKs
Figure 12. ADC TDM (8-Channel I2S Mode) Figure 13. DAC TDM (8-Channel I2S Mode) function of each pin in TDM and AUX modes, see Table 12. to be easily configured by the use of an auxiliary serial data port. the AUX channels are the last four slots of the TDM data stream. is available only in the 48 kHz/44.1 kHz/32 kHz sample rate.
Table 12. Pin Function Changes in TDM and AUX Modes
8 ON-CHIP DAC CHANNELS
32 BITS
Figure 14. 16-Channel DAC TDM-AUX Mode
4 ON-CHIP ADC CHANNELS 4 AUX ADC CHANNELS
Figure 15. 8-Channel AUX ADC Mode
4 ON-CHIP ADC CHANNELS AUXILIARY ADC CHANNELS UNUSED SLOTS
Figure 16. 16-Channel AUX ADC Mode
Figure 17. Combined AUX DAC and ADC Mode
AD1939 is the device attached to the DSP TDM port. normally required by the one-line TDM mode. 192 kHz sample rate into the AD1939 as shown in Figure 20. Figure 22. Note that in the 512 fS ABCLK mode, the ADC
8 DAC CHANNELS OF THE FIRST IC IN THE CHAIN
8 UNUSED SLOTS
8 DAC CHANNELS OF THE SECOND IC IN THE CHAIN
Figure 18. Single-Line DAC TDM Daisy-Chain Mode (Applicable to 48 kHz Sample Rate, 16-Channel, Two- AD1939 Daisy Chain)
8 DAC CHANNELS OF THE SECOND IC IN THE CHAIN8 DAC CHANNELS OF THE FIRST IC IN THE CHAIN
Figure 19. Dual-Line DAC TDM Mode (Applicable to 96 kHz Sample Rate, 16-Channel, Two-AD1939 Daisy Chain); DSDATA3 and DSDATA4 Are the Daisy Chain Figure 20. Dual-Line DAC TDM Mode (Applicable to 192 kHz Sample Rate, 8-Channel Mode)
4 ADC CHANNELS OF FIRST IC IN THE CHAIN4 ADC CHANNELS OF SECOND IC IN THE CHAIN
Figure 21. ADC TDM Daisy-Chain Mode (256 fS ABCLK, Two-AD1939 Daisy Chain)
4 ADC CHANNELS OF
Figure 22. ADC TDM Daisy-Chain Mode (512 fS ABCLK, Two-AD1939 Daisy Chain)
- DSP MODE DOES NOT IDENTIFY CHANNEL.
- LRCLK NORMALLY OPERATES AT fS EXCEPT FOR DSP MODE, WHICH IS 2 × fS.
- BCLK FREQUENCY IS NORMALLY 64 × LRCLK BUT MAY BE OPERATED IN BURST MODE.
Figure 23. Stereo Serial Modes
Table 13. Pin Function Changes in TDM and AUX Modes (Replication of Table 12) Figure 26. Example of AUX Mode Connection to SHARC (AD1939 as TDM Master/AUX Master Shown)
registers that are set to full volume. Note that the first setting in each control register parameter is the default setting. Table 14. Register Format Table 15. Register Addresses and Functions
0 PLL and Clock Control 0
1 PLL and Clock Control 1
2 DAC Control 0
3 DAC Control 1
4 DAC Control 2
5 DAC individual channel mutes
6 DAC L1 volume control
7 DAC R1 volume control
8 DAC L2 volume control
9 DAC R2 volume control
10 DAC L3 volume control
11 DAC R3 volume control
12 DAC L4 volume control
13 DAC R4 volume control
14 ADC Control 0
15 ADC Control 1
16 ADC Control 2
Table 16. PLL and Clock Control 0 Register
1 Power-down
11 Off
01 DLRCLK
10 ALRCLK
11 Reserved
1 Enable: ADC and DAC active
Table 17. PLL and Clock Control 1 Register
1 MCLK
1 Disabled
1 Locked
Table 18. DAC Control 0 Register
101 Reserved
110 Reserved
111 Reserved
01 TDM (daisy chain)
10 DAC AUX mode (ADC-, DAC-, TDM-coupled)
11 Dual-line TDM
Table 19. DAC Control 1 Register
1 Latch in at end of cycle (pipeline)
1 Left high
1 Master
1 Internally generated
1 Inverted
Table 20. DAC Control 2 Register
1 Mute
10 Reserved
Table 21. DAC Individual Channel Mutes Table 22. DAC Volume Controls
255 Full attenuation
Table 23. ADC Control 0 Register
1 Power down
Table 24. ADC Control 1 Register
10 ADC AUX mode (ADC-, DAC-, TDM-coupled)
Table 25. ADC Control 2 Register
1 Pulse (32 BCLKs per channel)
1 Drive out on rising edge
by the PLL with the DLRCLK as the PLL reference frequency. Figure 27. Serial DAC Data Transmission in TDM Format Without DBCLK Figure 28. I2S Pipeline Mode in DAC Serial Data Transmission
Figure 31 and a regulator circuit is shown in Figure 32.
3 OP275
5 OP275
Figure 29. Typical ADC Input Filter Circuit Figure 30. Recommended Loop Filters for LRCLK or MCLK PLL Reference Figure 31. Typical DAC Output Filter Circuit (Differential) Figure 32. Recommended 3.3 V Regulator Circuit
Figure 33. 64-Lead Low Profile Quad Flat Package [LQFP] 2 W = Qualified for Automotive Applications. obtain the specific Automotive Reliability reports for these models.
Rev. E | Page 32 of 32 NOTES ©2006–2013 Analog Devices, Inc. All rights reserved. Trademarks and registered trademarks are the property of their respective owners. D06071-0-2/13(E)