AM79514 AMD | Alldatasheet

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Publication# 18411 Rev: D Amendment: /0 Issue Date: October 1999 Am79514 Subscriber Line Interface Circuit DISTINCTIVE CHARACTERISTICS I Programmable constant-current feed I Programmable loop-detect threshold I On-chip switching regulator for low-power dissipation I Polarity reversal feature I Optimized for –60 V battery I Line feed characteristics independent of battery variations I Two-wire impedance set by single external impedance I Tip Open state for ground-start lines I Ring and test relay drivers I On-hook transmission BLOCK DIAGRAM VTX DET VREG VBAT Signal Transmission Input Decoder and Control Ground-Key Detector Ring Relay Driver Test Relay Driver Off-Hook Detector Power-Feed Controller Ring-Trip Detector Switching Regulator TESTOUT RINGOUT RD RDC L Two-Wire A(TIP) HPA HPB B(RING) BGND DA DB CHS QBAT CHCLK VCC VEE AGND/DGND Interface RSN Ring Relay Driver

2 Am79514 Data Sheet

ORDERING INFORMATION

AMD standard products are available in several packages and operating ranges. The order number (Valid Combination) is formed by a combination of the elements below. Note: * Functionality of the device from 0°C to +70°C is guaranteed by production testing. Performance from –40°C to +85°C is guaranteed by characterization and periodic sampling of production units. Am79514 J PERFORMANCE GRADE TEMPERATURE RANGE C = Commercial (0°C to 70°C)* PACKAGE TYPE J = 32-pin Plastic Leaded Chip Carrier (PL 032) Am79514 Subscriber Line Interface Circuit –1 = Performance Grading –2 = Performance Grading C DEVICE NUMBER/DESCRIPTION Valid Combinations Valid Combinations list configurations planned to be supported in volume for this device. Consult the local AMD sales office to confirm availability of specific valid combinations, to check on newly released combinations, and to obtain additional data on AMD’s standard military grade products. Valid Combinations Am7951X JC

Notes: 1. Pin 1 is marked for orientation. 2. TP is a thermal conduction pin tied to substrate. TP TESTOUT L VBAT QBAT CHS CHCLK RINGOUT BGND B(RING) A(TIP) DBDGND 14 15 16 17 18 19 20 4 3 2 1 32 31 30 VCC RDC TP DA RD HPB HPA VTX VEE RSN AGND VREG DET Am79514

4 Am79514 Data Sheet

Pin Names Type Description AGND Gnd Analog ground. A(TIP) Output Output of A(TIP) power amplifier. BGND Gnd Battery (power) ground. B(RING) Output Output of B(RING) power amplifier. C3 –C1 Inputs Decoder. TTL compatible. C3 is MSB and C1 is LSB. C4 Input Test relay driver command. TTL compatible. A logic High enables the driver. DGND Gnd Digital ground. CHCLK Input Chopper clock. Input to switching regulator (TTL compatible) Frequency = 256 kHz (nominal). CHS Input Chopper stabilization. Connection for external stabilization components. DA Input Ring-Trip negative. Negative input to ring-trip comparator. DB Input Ring-Trip positive. Positive input to ring-trip comparator. DET Output Detector. When enabled, a logic Low indicates that the selected detector is tripped. The detector is selected by the logic inputs (C3–C1 and E1). The output is open-collector with a built-in 15 kΩ pull-up resistor. E0 Input Read enable. A logic High enables DET . A logic Low disables DET. E1 Input Ground key enable. E1 = High connects the ground-key detector to DET, and E1 = Low connects the off-hook or ring-trip detector to DET. HPA Capacitor High-pass filter capacitor. A(TIP) side of high-pass filter capacitor. HPB Capacitor High-pass filter capacitor. B(RING) side of high-pass filter capacitor. L Output Switching regulator power transistor. Connection point for filter inductor and anode of catch diode. This pin will have up to 60 V of pulse waveform on it and must be isolated from sensitive circuits. Extreme care must be taken to keep the diode connections short because of the high currents and high di/dt. QBAT Battery Quiet battery. Filtered battery supply for the signal processing circuits. An external 100 Ω , 1/8 Ω resistor must be connected between QBAT and VBAT pins. RD Resistor Detect resistor. Threshold modification and filter point for the off-hook detector. RDC Resistor DC feed resistor. Connection point for the DC feed current programming network. The other end of the network connects to the receiver summing node (RSN). The sign of V RDC is negative for nor- mal polarity and positive for reverse polarity. RINGOUT Output Ring relay driver. Sourcing from BGND with internal diode to QBAT. RSN Input Receive summing node. The metallic current (both AC and DC) between A(TIP) and B(RING) is equal to 1000 times the current into this pin. The networks that program receive gain, two-wire impedance, and feed current all connect to this node. This node is extremely sensitive. Care should be taken to route the 256-kHz chopper clock and switch lines away from the RSN node. TESTOUT Output Test relay driver. Sourcing from BGND with internal diode to QBAT. TP Thermal Thermal pin. Connection for heat dissipation. Internally connected to substrate (QBAT). Leave as open circuit or connected to QBAT. In both cases, the TP pins can connect to an area of copper on the board to enhance heat dissipation. VBAT Battery Battery Supply. VCC Power +5 V power supply. VEE Power –5 V power supply. VREG Input Regulated voltage. Provides negative power supply for power amplifiers, connection point for inductor, filter capacitor, and chopper stabilization. VTX Output Transmit audio. This output is a unity gain version of the A(TIP) and B(RING) metallic voltage. The other end of the two-wire input impedance programming network connects here.

Note: Rise time of VBAT (dv/dt) must be limited to 27 V/µs or less when QBAT bypass = 0.33 µF. BGND with respect to AGND/DGND.. +1.0 V to –3.0 V A(TIP) or B(RING) to BGND: BAT to 0 V C4 –C1, E1, CHCLK, CC + 0.4 V Note: Thermal limiting circuitry on chip will shut down the circuit at a junction temperature of about 165°C. The device should never be exposed to this temperature. Operation above 145°C junction temperature may degrade device reliability. See the SLIC Packaging Considerations for more information. Stresses above those listed under Absolute Maximum Ratings may cause permanent device failure. Functionality at or above these limits is not implied. Exposure to Absolute Maximum Ratings for extended periods may affect device reliability. OPERATING RANGES Commercial (C) Devices BGND with respect to Operating Ranges define those limits between which the functionality of the device is guaranteed. * Functionality of the device from 0°C to +70°C is guaranteed by production testing. Performance from –40°C to +85°C is guaranteed by characterization and periodic sampling of production units.

6 Am79514 Data Sheet

ELECTRICAL CHARACTERISTICS

Description Test Conditions (See Note 1) Min Typ Max Unit Note Analog (VTX ) output impedance 3 20 W Analog (VTX ) output offset 0°C to +70°C –40°C to +85°C –35 –40 +35 +40 mV — Analog (RSN) input impedance 300 Hz to 3.4 kHz 1 20 WLongitudinal impedance at A or B Overload level Z2WIN = 600 Ω to 900 Ω 4-wire 2-wire –3.1 –3.1 +3.1 +3.1 Vpk 2 Transmission Performance, 2-Wire Impedance 2-wire return loss (See Test Circuit D)

300 Hz to 500 Hz

500 Hz to 2500 Hz

2500 Hz to 3400 Hz

Longitudinal Balance (2-Wire and 4-Wire, See Test Circuit C) Longitudinal to metallic L-T, L-4

200 Hz to 1 kHz: –1*

0°C to +70°C –2 normal polarity –40°C to+85°C –2 reverse polarity –2 dB 1 kHz to 3.4 kHz: –1* normal polarity 0°C to +70°C –2 normal polarity –40°C to +85°C –2 reverse polarity –2 Longitudinal sum (L-T) + (T-L)300 to 3400 Hz 95 Longitudinal signal generation 4-L or T-L 300 to 800 Hz 800 to 3400 Hz Longitudinal current capability per wire Active state OHT state 8 mArms Insertion Loss (2- to 4-Wire and 4- to 2-Wire, See Test Circuits A and B) Gain accuracy 0 dBm, 1 kHz, 0°C to +70°C 0 dBm, 1 kHz, –40°C to +85°C 0 dBm, 1 kHz, 0°C to +70°C –1* 0 dBm, 1 kHz, –40°C to +85°C –1 –0.15 –0.20 –0.1 –0.15 +0.15 +0.20 +0.1 +0.15 dB Variation with frequency 300 Hz to 3400 Hz Relative to 1 kHz 0°C to +70°C –40°C to +85°C –0.1 –0.15 +0.1 +0.15 4 Gain tracking +7 dBm to –55 dBm 0°C to +70°C –40°C to +85°C –0.1 –0.15 +0.1 +0.15 Note: * P.G. = Performance Grade

Balance Return Signal (4-Wire to 4-Wire, See Test Circuit B) Gain accuracy 0 dBm, 1 kHz, 0°C to +70°C 0 dBm, 1 kHz, –40°C to +85°C 0 dBm, 1 kHz, 0°C to +70°C –1* 0 dBm, 1 kHz, –40°C to +85°C –1 –0.15 –0.20 –0.1 –0.15 +0.15 +0.20 +0.1 +0.15 dB Variation with frequency 300 Hz to 3400 Hz Relative to 1 kHz 0°C to +70°C –40°C to +85°C –0.1 –0.15 +0.1 +0.15 4 Gain tracking +7 dBm to –55 dBm 0°C to +70°C –40°C to +85°C –0.1 –0.15 +0.1 +0.15 Group delay f = 1 kHz 5.3 µs Total Harmonic Distortion (2- to 4-Wire or 4- to 2-Wire, See Test Circuits A and B) Distortion level 0 dBm, 300 Hz to 3400 Hz –64 –50 dB Distortion level +9 dBm –55 –40 Idle Channel Noise Psophometric weighted noise2-wire 0 °C to +70°C 2-wire –40°C to +85°C –83 –83 –78 –75 dBmp 4, 7 4-wire 0 °C to +70°C 4-wire –40°C to +85°C –83 –83 –78 –75 4, 7 Single Frequency Out-of-Band Noise (See Test Circuit E) Metallic 4 kHz to 9 kHz 9 kHz to 1 MHz 256 kHz and harmonics –76 –76 –57 dBm 4, 5, 9 4, 5 Longitudinal 1 kHz to 15 kHz Above 15 kHz 256 kHz and harmonics –70 –85 –57 4, 5, 9 4, 5 DC Feed Current and Voltage (See Figure 1) Unless otherwise noted, Battery = 60 V (VBAT = –59.3 V) Active state loop-current accuracy ILOOP (nominal) = 40 mA R L = 2000 Ω , Battery = 62 V –1* R L = 2080 Ω –2 –7.5 22.7 +7.5 mA mA On-hook loop voltage R L = ∞ 47.5 49 V OHT state Tip Open state Disconnect state R L = 600 Ω R L = 600 Ω R L = 0 18 20 1.0 1.0 mA Power Dissipation, Battery = –60 V On-hook Open Circuit state On-hook OHT state On-hook Active state Off-hook OHT state Off-hook Active state R L = 600 Ω R L = 600 Ω 175 260 500 650 120 250 400 750 1000 mW ELECTRICAL CHARACTERISTICS (CONTINUED) Description Test Conditions (See Note 1) Min Typ Max Unit Note

8 Am79514 Data Sheet

VCC On-hook supply current Open Circuit state OHT state Active state 7.5 4.5 mA VEE On-hook supply current Open Circuit state OHT state Active state 1.0 2.2 2.7 2.3 3.5 6.0 VBAT On-hook supply currentOpen Circuit state OHT state Active state 0.4 3.0 4.0 1.0 5.0 6.0 Power Supply Rejection Ratio (VRIPPLE = 50 mVrms) VCC 40 Hz to 3400 Hz 3.4 kHz to 50 kHz dB 6, 7 VEE 40 Hz to 3400 Hz 3.4 kHz to 50 kHz 6, 7 VBAT 40 Hz to 3400 Hz 3.4 kHz to 50 kHz 6, 7 Off-Hook Detector Current threshold IDET = 365/RD –20 +20 % Ground-Key Detector Thresholds Active State, Battery = –60 V Ground-key resistance thresholdB(RING) to GND 2.0 4.2 10.0 kΩ Ground-key current thresholdB(RING) or midpoint to GND 9 mA 8 Ring-Trip Detector Input Bias current –5 –0.05 µA Offset voltage Source resistance = 0 to 200 kΩ –50 0 +50 mV Logic Inputs (C4–C1, E1, and CHCLK) Input High voltage 2.0 V Input Low voltage 0.8 µAInput High current All inputs except E1 Input E1 –75 –75 Input Low current –0.4 mA Logic Output (DET) Output Low voltage IOUT = 0.8 mA 0.4 V Output High voltage IOUT = –0.1 mA 2.4 Relay Driver Outputs (RINGOUT, TESTOUT) On voltage 50 mA source BGND –2 V Off leakage 0.5 100 µA Clamp voltage 50 mA sink Q BAT –2 V ELECTRICAL CHARACTERISTICS (CONTINUED) Description Test Conditions (See Note 1) Min Typ Max Unit Note

Symbol Parameter Test Conditions Temperature Ranges Min Typ Max Unit Note tgkde E1 Low to DET High (E0 = 1) E1 Low to DET Low (E0 = 1)Ground-key Detect state R L open, RG connected (See Figure H) 0°C to +70°C –40°C to +85°C 0°C to +70°C –40°C to +85°C 3.8 4.0 1.1 1.6 µs 4 tgkdd E0 High to DET Low (E1 = 0) 0°C to +70°C –40°C to +85°C 1.1 1.6 tgkd0 E0 Low to DET High (E1 = 0) 0°C to +70°C –40°C to +85°C 3.8 4.0 tshde E1 High to DET Low (E0 = 1) E1 High to DET High (E0 = 1)Switchhook Detect state R L = 600 Ω , RG open (See Figure G) 0°C to +70°C –40°C to +85°C 0°C to +70°C –40°C to +85°C 1.2 1.7 3.8 4.0 tshdd E0 High to DET Low (E1 = 1) 0°C to +70°C –40°C to +85°C 1.1 1.6 tshd0 E0 Low to DET High (E1 = 1) 0°C to +70°C –40°C to +85°C 3.8 4.0 TESTOUT BGND Q BAT RINGOUT Q BAT BGND

10 Am79514 Data Sheet

Notes: 1. Unless otherwise noted, test conditions are BAT = –60 V, VCC = +5 V, VEE = –5 V, RL = 600 Ω, CHP = 0.33 µF, R DC1 = RDC2 = 31.25 kΩ , CDC = 0.1 µF , Rd = 51.1 kΩ , no fuse resistors, two-wire AC output impedance programming impedance (ZT) = 600 kΩ resistive, receive input summing impedance (ZRX ) = 300 kΩ resistive. (See Table 2 for component formulas.) 2. Overload level is defined when THD = 1%. 3. Balance return signal is the signal generated at V TX by VRX . This specification assumes that the two-wire AC load impedance matches the impedance programmed by ZT. 4. Not tested in production. This parameter is guaranteed by characterization or correlation to other tests. 5. These tests are performed with a longitudinal impedance of 90 Ω and metallic impedance of 300 Ω for frequencies below 12 kHz and 135 Ω for frequencies greater than 12 kHz. These tests are extremely sensitive to circuit board layout. Please refer to application notes for details. 6. This parameter is tested at 1 kHz in production. Performance at other frequencies is guaranteed by characterization. 7. When the SLIC is in the Anti-Sat 2 operating region, this parameter is degraded. The exact degradation depends on system design. The Anti-Sat 2 region occurs at high loop resistances when |V BAT | – |VAX –VBX | is less than approximately 15 V. 8. “Midpoint” is defined as the connection point between two 300 Ω series resistors connected between A(TIP) and B(RING). 9. Fundamental and harmonics from 256 kHz switch regulator chopper are not included. DET tgkde tshde tgkde tshde DET tshdd tshd0 tgkd0 tgkdd E1 to DET E0 to DET Note: All delays measured at 1.4 V level.

Table 1. SLIC Decoding Table 2. User-Programmable Components RSN must be taken into account. RDC pin. RDC1 and RDC2 are approximately equal. and IT is the threshold current between on hook and off hook.

12 Am79514 Data Sheet

Notes: 1. Constant-current region: Active state, OHT state, 2. Anti-sat cut-in: 3. Open Circuit voltage: 4. Anti-sat 1 region: 5. Anti-sat 2 region: IL 2500 R DC IL 2--- 2500 R DC V AB 46 V,= V BAT 58.9 V≥ V AB 1.087 VBAT 18.017,–= V BAT 58.9 V< V AB 51.23 V,= V BAT 61.5 V≥ V AB 1.073 VBAT 14.72,–= V BAT 61.5 V< V AB 51.23 I L R DC V AB 1.073 VBAT 14.72– IL R DC 1 1 R DC = 62.5 kΩ VBAT = 62.3 V a. VA –VB (VAB ) Voltage vs. Loop Current (Typical) Active state OHT state

Figure 1. DC Feed Characteristics

14 Am79514 Data Sheet

B(RING) A(TIP) R T R R VM ZIN ZD VS B(RING) A (TIP) RSN AGND VTX R RX R T S2 Open, S1 Closed L-T Long. Bal. = 20 log (VAB / VL) L-4 Long. Bal. = 20 log (VTX / VL) S2 Closed, S1 Open 4-L Long. Sig. Gen. = 20 log (VL / VRX ) C. Longitudinal Balance IL2–4 = 20 log (VTX / VAB ) B(RING) A. Two- to Four-Wire Insertion Loss A(TIP) A(TIP) SLIC SLIC SLIC SLIC Note: ZD is the desired impedance (e.g., the characteristic impedance of the line). R L = –20 log (2 VM / VS) B. Four- to Two-Wire Insertion Loss and Balance Return Signal VTX VTX VTX B(RING) RSN RSN RSN R L VL R L VAB VL R T R RX VAB R L AGND IL4–2 = 20 log (VAB / VTX ) BRS = 20 log (VTX / VAB ) S1 C R L ω C << RL VL R L R T R RXS2 VRX D. Two-Wire Return Loss Test Circuit AGND

TEST CIRCUITS (continued) IDC 56 Ω 68 Ω 68 Ω C << 90 Ω E. Single-Frequency Noise A(TIP) B(RING) SLIC C SM R L R L R E SE A(TIP) B(RING) Current Feed VCC 6.2 kΩ 15 pF A(TIP) B(RING) R L = 600 Ω R G = 3.9 kΩ DET F. Ground-Key Detection G. Loop-Detector Switching H. Ground-Key Switching or Ground Key A(TIP) B(RING) ωC

16 Am79514 Data Sheet

 Minor changes were made to the data sheet style and format to conform to AMD standards. Revision B to Revision C  In Pin Description table, inserted/changed TP pin description to: “Thermal pin. Connection for heat dissipation. Internally connected to substrate (QBAT). Leave as open circuit or connected to QBAT. In both cases, the TP pins can connect to an area of copper on the board to enhance heat dissipation.”  Minor changes were made to the data sheet style and format to conform to AMD standards. Revision C to Revision D  The physical dimension (PL032) was added to the Physical Dimension section.  Deleted the Ceramic DIP and Plastic DIP part (Am79512) and references to them.  Updated Pin Description table to correct inconsistencies. .050 REF..026 .032 TOP VIEW Pin 1 I.D. .485 .495.447 .453 .585 .595 .547 .553 16-038FPO-5 PL 032 DA79 6-28-94 ae SIDE VIEW SEATING PLANE .125 .140 .009 .015 .080 .095 .042 .056 .013 .021 .400 REF. .490 .530

The contents of this document are provided in connection with Advanced Micro Devices, Inc. ("AMD") products. AMD makes no representations or warranties with respect to the accuracy or completeness of the contents of this publication and reserves the right to make changes to speci- fications and product descriptions at any time without notice. No license, whether express, implied, arising by estoppel or otherwise, to any in- tellectual property rights is granted by this publication. Except as set forth in AMD’s Standard Terms and Conditions of Sale, AMD assumes no liability whatsoever, and disclaims any express or implied warranty, relating to its products including, but not limited to, the implied warranty of merchantability, fitness for a particular purpose, or infringement of any intellectual property right. AMD ’s products are not designed, intended, authorized or warranted for use as components in systems intended for surgical implant into the body, or in other applications intended to support or sustain life, or in any other application in which the failure of AMD’s product could create a situation where personal injury, death, or severe property or environmental damage may occur. AMD reserves the right to discontinue or make changes to its products at any time without notice. © 1999 Advanced Micro Devices, Inc. All rights reserved. Trademarks AMD, the AMD logo and combinations thereof are trademarks of Advanced Micro Devices, Inc. Product names used in this publication are for identification purposes only and may be trademarks of their respective companies.