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 ASAHI KASEI
[AK4683]
AK4683
Asynchronous Multi-Channel Audio CODEC with DIR/T
GENERAL DESCRIPTION The AK4683 is a single chip CODEC that includes two channels of ADC and four channels of DAC. The ADC outputs 24bit data and the DAC accepts up to 24bit input data. The ADC has the Enhanced Dual Bit architecture with wide dynamic range. The DAC introduces the new developed Advanced Multi-Bit architecture, and achieves wider dynamic range and lower outband noise. The also has digital audio receiver (DIR) and transmitter (DIT) compatible with 192kHz, 24bits. The DIR can automatically detect a Non-PCM bit stream such as Dolby Digital (AC-3)*. The AK4683 has a dynamic range of 100dB for ADC, 106dB for DAC and is well suited for digital TV and home theater system. * Dolby Digital (AC-3) is a trademark of Dolby Laboratories. FEATURES ADC/DAC part Asynchronous ADC/DAC Operation 6:1 Input Selector with Pre-amp 2ch 24bit ADC - 64x Oversampling - Sampling Rate up to 96kHz - Linear Phase Digital Anti-Alias Filter - Single-Ended Input - S/(N+D): 90dB - Dynamic Range, S/N: 100dB - Digital HPF for Offset Cancellation - Channel Independent Digital Volume (+24/-103dB, 0.5dB/step) - Soft Mute - Overflow Flag 4ch 24bit DAC - 128x Oversampling - Sampling Rate up to 192kHz - 24bit 8 times Digital Filter - Single-Ended Outputs - S/(N+D): 90dB - Dynamic Range, S/N: 106dB - Channel Independent Digital Volume (+12/-115dB, 0.5dB/step) - Soft Mute - De-emphasis Filter (32kHz, 44.1kHz, 48kHz) - Zero Detect Function Stereo Headphone Amp with Volume - 50mW at 16ohm - Click-noise free at Power on/off High Jitter Tolerance
MS0427-E-01 -1-
2005/11
ASAHI KASEI
[AK4683]
DIR/DIT Part - AES3, IEC60958, S/PDIF, EIAJ CP1201 Compatible - Low jitter Analog PLL - PLL Lock Range : 32kHz to 192kHz - Clock Source: PLL or X'tal - 4-channel Receiver input - 1-channel Transmission output (Through output or DIT) - Auxiliary digital input - De-emphasis for 32kHz, 44.1kHz, 48kHz and 96kHz - Detection Functions * Non-PCM Bit Stream Detection * DTS-CD Bit Stream Detection * Sampling Frequency Detection (32kHz, 44.1kHz, 48kHz, 88.2kHz, 96kHz, 176.4kHz, 192kHz) * Unlock & Parity Error Detection * Validity Flag Detection - Up to 24bit Audio Data Format - 40-bit Channel Status Buffer - Burst Preamble bit Pc and Pd Buffer for Non-PCM bit stream - Q-subcode Buffer for CD bit stream TTL Level Digital I/F External Master Clock Input: - 256fs, 384fs, 512fs (fs=32kHz 48kHz) - 128fs, 192fs, 256fs (fs=64kHz 96kHz) - 128fs (fs=120kHz 192kHz) Master Clock Output: 128fs/256fs/384fs/512fs 2 Audio Serial I/F (PORTA, PORTB) - Master/Slave mode - I/F format PORTA: Left/Right(20/24 bit) justified, I2S, TDM 2 PORTB: Left/Right(20/24 bit) justified, I S 2 4-wire Serial and I C Bus P I/F for mode setting Operating Voltage: 4.5 to 5.5V Power Supply for output buffer: 2.7 to 5.5V 64pin LQFP Package (0.5mm pitch)
MS0427-E-01 -2-
2005/11
ASAHI KASEI
[AK4683]
Block Diagram
RMCLK RX0 RX1 RX2 RX3 LISEL LOPIN LIN1 LIN2 LIN3 LIN4 LIN5 LIN6 RIN1 RIN2 RIN3 RIN4 RIN5 RIN6 ROPIN RISEL
Through DIR ADC DIT
4:2 Input Selector
Clock Recovery
DAIF Decoder
XTO
X'tal Oscillator
XTI MCLK2 MCKO PORTB BICKB LRCKB
DIR ADC SDTIA1 off
IPS0/1, OPS0/1 bit
ADC
LIN0/1/2, RIN0/1/2 bit
HPF, DVOL
ADC Audio I/F
ADC
HPF, DVOL
SDOUT
SDTOB
SDTOB0/1 bit SDTIB I2C
P
TX DIT bit
DIT
SDTIB SDTIA1 DIR ADC SDTIB SDTIA1 SDTIA2 SDTIA3 DIR DIR ADC SDTIB off SDTOA0/1 bit
I/F
DIT0/1 bit LOUT1 ROUT1
LPF LPF LPF LPF
DAC DAC DAC DAC
DVOL DVOL DVOL DVOL
DAC1 Audio I/F DAC2 Audio I/F
CSN CCLK CDTI CDTO
PORTA SDTOA OLRCKA BICKA ILRCKA SDTIA1 SDTIA2 SDTIA3
LOUT2 ROUT2
ADC SDTIB SDTIA1 SDTIA2 SDTIA3
HPL HPR
DAC10/11/12, DAC20/21/22 bit
MS0427-E-01 -3-
2005/11
ASAHI KASEI
[AK4683]
Ordering Guide AK4683EQ AKD4683 -20 +85C 64pin LQFP (0.5mm pitch) Evaluation Board for AK4683
Pin Layout
AVDD1 PVSS AVSS1
RIN4
RIN3
RIN2
RIN6
RIN5
RIN1
LIN5
LIN4
LIN6
LIN3
PVDD RX0 I2C RX1 RX2 RX3 INT VOUT CDTO LRCKB BICKB SDTOB OLRCKA ILRCKA BICKA SDTOA
1 2 3 4 5 6 7 8 9
64 63 62 61 60 59 58 57 56 55 54 53 52 51 50 49 48 47 46 45 44 43
LIN2
R
LIN1
RISEL ROPIN LOPIN LISEL AVSS2 AVDD2 VCOM ROUT2 LOUT2 ROUT2 LOUT2 MUTET HPL HPR HVSS HVDD
AK4683EQ
Top View
42 41 40 39 38 37 36 35 34
10 11 12 13 14 15
33 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 TVDD PDN DVDD MCLK2 CSN SDTIA1 SDTIA2 SDTIA3 MCKO XTO SDTIB TX DVSS CCLK XTI CDTI
Compatibility with AK4588
Functions DAC, ADC Asynchronous operation DAC ch# HP-Amp ADC Input selector AK4588 NOT Available 8ch AK4683 Available 4ch 2ch 6:1
MS0427-E-01 -4-
2005/11
ASAHI KASEI
[AK4683]
PIN/FUNCTION
No. 1 2 3 4 5 6 7 Pin Name PVDD RX0 I2C RX1 RX2 RX3 INT VOUT DZF OVF 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 CDTO LRCKB BICKB SDTOB OLRCKA ILRCKA BICKA SDTOA MCKO TVDD DVSS DVDD XTI XTO TX MCLK2 PDN CDTI SDA CCLK SCL CSN TEST SDTIA1 SDTIA2 SDTIA3 SDTIB HVDD HVSS HPR HPL MUTET I/O I I I I I O O O O O I/O I/O O I/O I/O I/O O O I O O I I I I/O I I I I I I I I O O Function PLL Power supply Pin, 4.5V5.5V Receiver Channel 0 Pin (Internal biased pin. Internally biased at PVDD/2) Control Mode Select Pin. "L": 4-wire Serial, "H": I2C Bus Receiver Channel 1 Pin Receiver Channel 2 Pin Receiver Channel 3 Pin Interrupt Pin V-bit Output Pin for Receiver Input Zero Input Detect Pin When the input data of DAC follow total 8192 LRCK cycles with "0" input data, this pin goes to "H". And when RSTN1 bit is "0", PWDA bit is "0", this pin goes to "H". Analog Input Overflow Detect Pin This pin goes to "H" if the analog input of Lch or Rch overflows. Control Data Output Pin in Serial Mode and I2C pin = "L". Channel Clock B Pin Audio Serial Data Clock B Pin Audio Serial Data Output B Pin Output Channel Clock A Pin Input Channel Clock A Pin Audio Serial Data Clock A Pin Audio Serial Data Output A Pin Master Clock Output Pin Output Buffer Power Supply Pin, 2.7V5.5V Digital Ground Pin, 0V Digital Power Supply Pin, 4.5V5.5V X'tal Input Pin X'tal Output Pin Transmit Channel Output pin When DIT bit = "0", RX0~3 Through. When DIT bit = "1", Internal DIT Output. Master Clock Input Pin Power-Down Mode & Reset Pin When "L", the AK4683 is powered-down, all registers are reset. And then all digital output pins go "L". The AK4683 must be reset once upon power-up. Control Data Input Pin in Serial Mode and I2C pin = "L". Control Data Pin in Serial Mode and I2C pin = "H". Control Data Clock Pin in Serial Mode and I2C pin = "L" Control Data Clock Pin in Serial Mode and I2C pin = "H" Chip Select Pin in Serial Mode and I2C pin = "L". This pin should be connected to DVSS in Serial Mode and I2C pin = "H". Audio Serial Data Input A1 Pin Audio Serial Data Input A2 Pin Audio Serial Data Input A3 Pin Audio Serial Data Input B Pin HP Power Supply Pin, 4.5V5.5V HP Ground Pin, 0V HP Rch Output Pin HP Lch Output Pin HP Common Voltage Output Pin 1F capacitor should be connected to HVSS externally.
8
MS0427-E-01 -5-
2005/11
ASAHI KASEI
[AK4683]
No. 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64
Pin Name LOUT2 ROUT2 LOUT1 ROUT1 VCOM AVDD2 AVSS2 LISEL LOPIN ROPIN RISEL AVSS1 AVDD1 LIN1 RIN1 LIN2 RIN2 LIN3 RIN3 LIN4 RIN4 LIN5 RIN5 LIN6 RIN6 PVSS R
I/O O O O O O O O O I I I I I I I I I I I I -
Function DAC2 Lch Positive Analog Output Pin DAC2 Rch Positive Analog Output Pin DAC1 Lch Positive Analog Output Pin DAC1 Rch Positive Analog Output Pin DAC/ADC Common Voltage Output Pin 2.2F capacitor should be connected to AVSS2 externally. DAC Power Supply Pin, 4.5V5.5V DAC Ground Pin, 0V Lch Feedback Resistor Output Pin Lch Feedback Resistor Input Pin. 0.5 x AVDD1. Rch Feedback Resistor Input Pin. 0.5 x AVDD1. Rch Feedback Resistor Output Pin ADC Ground Pin, 0V ADC Power Supply Pin, 4.5V5.5V Lch Input 1 Pin Rch Input 1 Pin Lch Input 2 Pin Rch Input 2 Pin Lch Input 3 Pin Rch Input 3 Pin Lch Input 4 Pin Rch Input 4 Pin Lch Input 5 Pin Rch Input 5 Pin Lch Input 6 Pin Rch Input 6 Pin PLL Ground pin External Resistor Pin 12k +/-1% resistor should be connected to PVSS externally.
Note: All input pins except internal biased pin (RX0) and analog input pins (LIN1-6, RIN1-6) should not be left floating.
Handling of Unused Pin
The unused I/O pins should be processed appropriately as below. Classification Analog Pin Name RX0, LOUT1-2, ROUT1-2, LIN1-6, RIN1-6 INT, XTO, MCKO, VOUT/DZF/OVF, SDTOA-B, CDTO, TX RX1-3, CSN, CCLK, CDTI, XTI, MCLK2, OLRCKA, ILRCKA, BICKA, SDTIA1-3, LRCKB, BICKB, SDTIB Setting These pins should be open. These pins should be open. These pins should be connected to DVSS.
Digital
MS0427-E-01 -6-
2005/11
ASAHI KASEI
[AK4683]
ABSOLUTE MAXIMUM RATINGS (AVSS1, AVSS2, DVSS, PVSS, HVSS=0V; Note 1) Parameter Symbol min -0.3 Power Supplies ADC Analog AVDD1 -0.3 DAC Analog AVDD2 -0.3 Headphone Analog HVDD -0.3 Digital DVDD -0.3 PLL PVDD -0.3 Output buffer TVDD |AVSS2-AVSS1| (Note 2) GND1 |AVSS2-DVSS| (Note 2) GND2 |AVSS2-PVSS| (Note 2) GND3 |AVSS2-HVSS| (Note 2) GND4
Input Current (any pins except for supplies) Analog Input Voltage (LIN, RIN pins) Digital Input Voltage Except for ILRCKA, OLRCKA, LRCKB, BICKA-B, RX0, I2C pins ILRCKA, OLRCKA, LRCKB, BICKA-B pins RX0, I2Cpins Ambient Temperature (power applied) Storage Temperature IIN VINA VIND1 VIND2 VIND3 Ta Tstg -0.3 -0.3 -0.3 -0.3 -20 -65
max 6.0 6.0 6.0 6.0 6.0 6.0 0.3 0.3 0.3 0.3 10 AVDD1+0.3 DVDD+0.3 TVDD+0.3 PVDD+0.3 85 150
Units V V V V V V V V V V mA V V V V C C
Notes: 1. All voltages with respect to ground. 2.AVSS, DVSS and PVSS must be connected to the same analog ground plane. WARNING: Operation at or beyond these limits may result in permanent damage to the device. Normal operation is not guaranteed at these extremes.
RECOMMENDED OPERATING CONDITIONS (AVSS, DVSS, PVSS=0V; Note 3) Parameter Symbol min typ 5.0 4.5 AVDD1 Power Supplies ADC Analog 5.0 4.5 AVDD2 (Note 4) DAC Analog 5.0 AVDD2 HVDD Headphone Analog 5.0 4.5 DVDD Digital 5.0 4.5 PVDD PLL 5.0 2.7 TVDD Output buffer 0 -0.3 |DVDD - AVDD1| VDD1 0 -0.3 |DVDD - AVDD2| VDD2 0 -0.3 |DVDD - HVDD| VDD3 0 -0.3 |DVDD - PVDD| VDD4 0 -0.1 |AVDD1 - AVDD2| VDD5
max 5.5 5.5 5.5 5.5 5.5 DVDD +0.3 +0.3 +0.3 +0.3 +0.1
Units V V V V V V V V V V V
Notes: 3. All voltages with respect to ground. 4. The power up sequences among AVDD1, AVDD2, DVDD, PVDD, HVDD and TVDD are not critical. WARNING: AKM assumes no responsibility for the usage beyond the conditions in this datasheet.
MS0427-E-01 -7-
2005/11
ASAHI KASEI
[AK4683]
ANALOG CHARACTERISTICS (Ta=25C; AVDD1, AVDD2, HVDD, DVDD, PVDD, TVDD=5V; AVSS1, AVSS2, HVSS, DVSS, PVSS=0V; fs=48kHz; BICK=64fs; Signal Frequency=1kHz; 24bit Data; Measurement Frequency=20Hz20kHz at fs=48kHz, 20Hz~40kHz at fs=96kHz; 20Hz~40kHz at fs=192kHz, all blocks are synchronized, unless otherwise specified) Parameter min typ max Units Pre-Amp Characteristics: Feedback Resistance 10 50 k S/(N+D) (Note 5) 100 dB S/N (A-weighted) (Note 5) 108 dB Load Capacitance 20 pF ADC Analog Input Characteristics (note 6) Resolution 24 Bits S/(N+D) (-0.5dBFS) fs=48kHz 84 92 dB fs=96kHz 86 dB DR (-60dBFS) fs=48kHz, A-weighted 92 100 dB fs=96kHz 96 dB fs=96kHz, A-weighted 100 dB dB 100 92 S/N (Note 7) fs=48kHz, A-weighted dB 96 fs=96kHz dB 100 fs=96kHz, A-weighted Interchannel Isolation (Note 8) 90 105 dB Interchannel Gain Mismatch 0.2 0.5 dB Gain Drift 50 ppm/C Input Voltage (note 6) AIN=1.22xAVDD1 5.7 6.1 6.5 Vpp Power Supply Rejection (Note 9) 50 dB DAC Analog Output Characteristics Resolution 24 Bits dB 90 80 S/(N+D) fs=48kHz dB 88 fs=96kHz dB 88 fs=192kHz DR (-60dBFS) fs=48kHz, A-weighted 95 106 dB fs=96kHz 100 dB fs=96kHz, A-weighted 106 dB fs=192kHz 100 dB fs=192kHz, A-weighted 106 dB S/N (Note 10) fs=48kHz, A-weighted 95 106 dB fs=96kHz 100 dB fs=96kHz, A-weighted 106 dB fs=192kHz 100 dB fs=192kHz, A-weighted 106 dB Interchannel Isolation 90 110 dB Interchannel Gain Mismatch 0.2 0.5 dB Gain Drift 50 ppm/C Output Voltage AOUT=0.6xAVDD2 2.75 3.0 3.25 Vpp Load Resistance (AC Load) 5 k Load Capacitance 30 pF Power Supply Rejection (Note 9) 50 dB
MS0427-E-01 -8-
2005/11
ASAHI KASEI
[AK4683]
Analog Volume Characteristics (OPGA): Step Size: +0dB -16dB 0.1 -16dB -38dB 0.1 -38dB -50dB Headphone-Amp Characteristics: DAC HPL/HPR pins, RL=16 Output Voltage (0.506xHVDD) 1.94 S/(N+D) (-3dBFS) S/N (A-weighted) Interchannel Isolation Interchannel Gain Mismatch Load Resistance 16 C1 in Figure 1 Load Capacitance C2 in Figure 1 Power Supplies Power Supply Current Normal Operation (PDN pin = "H") (Note 11) AVDD1+ AVDD2 fs=48kHz, fs=96kHz fs=192kHz HVDD PVDD DVDD+TVDD fs=48kHz (Note 12) fs=96kHz fs=192kHz Power-down mode (PDN pin = "L") (Note 13)
HP-Amp
1 2 4 2.43 70 90 80 0.1 -
2.92 0.5 30 300
dB dB dB Vpp dBFS dB dB dB pF pF
37 19 7 8 35 45 55 80
52 27 10 11 49 63 77 200
mA mA mA mA mA mA mA A
HPL, HPR
+
C1
+
C2 16
Figure 1. Headphone Amplifier output circuit Notes: 5. Measured at LISEL/RISEL pins when the input resistor=47kohm, the feedback resistor=24kohm and input level =2Vrms. 6. Measured through Pre-Amp -> ADC. Input resistor=47kohm, feedback resistor=24kohm. 7. S/N measured by CCIR-ARM is 96dB(@fs=48kHz). 8. This value is the interchannel isolation between all the channels of the LIN1-6 and RIN1-6. 9. PSR is applied to AVDD, DVDD, PVDD and TVDD with 1kHz, 50mVpp. 10. S/N measured by CCIR-ARM is 102dB(@fs=48kHz). 11. CL=20pF, X'tal=24.576MHz, CM1-0="10", CM1-0="10", OCKS1-0="10"@48kHz,"00"@96kHz, "11"@192kHz. Headphone = No output. The resister network is attached to TX pin. 12. TVDD=6mA(typ@fs=48kHz), 7mA(typ@fs=96kHz), 10mA(typ@fs=192kHz). 13. In the power-down mode. RX0 input is open and all digital input pins including clock pins (MCLK2, BICKA, BICKB, ILRCKA, OLRCKA, BICKB pins) and RX1-3 pins are held DVSS.
MS0427-E-01 -9-
2005/11
ASAHI KASEI
[AK4683]
FILTER CHARACTERISTICS (Ta=25C; AVDD1, AVDD2, DVDD, PVDD, HVDD=4.55.5V; TVDD=2.75.5V; fs=48kHz) Parameter Symbol min typ max ADC Digital Filter (Decimation LPF): 18.9 PB 0 Passband 0.1dB 20.0 (Note 14) -0.2dB 23.0 -3.0dB Stopband SB 28.0 Passband Ripple PR 0.04 Stopband Attenuation SA 68 Group Delay (Note 15) GD 19 Group Delay Distortion 0 GD ADC Digital Filter (HPF): Frequency Response (Note 14) -3dB FR 1.0 -0.1dB 6.5 DAC Digital Filter: Passband (Note 14) -0.1dB PB 0 21.8 -6.0dB 24.0 Stopband SB 26.2 Passband Ripple PR 0.02 Stopband Attenuation SA 54 Group Delay (Note 15) GD 21 DAC Digital Filter + Analog Filter: FR 0.2 Frequency Response: 0 20.0kHz FR 40.0kHz (Note 16) 0.3 FR 80.0kHz (Note 16) 1.0
Units kHz kHz kHz kHz dB dB 1/fs s Hz Hz kHz kHz kHz dB dB 1/fs dB dB dB
Notes: 14. The passband and stopband frequencies scale with fs. For example, 21.8kHz at -0.1dB is 0.454 x fs (DAC). The reference frequency of these responses is 1kHz. 15. The calculating delay time which occurred by digital filtering. This time is from setting the input of analog signal to setting the 24bit data of both channels to the output register of PORTA or PORTB. For DAC, this time is from setting the 20/24bit data of both channels on input register of PORTA or PORTB to the output of analog signal. 16. 40kHz@fs=96kHz, 80kHz@fs=192kHz
MS0427-E-01 - 10 -
2005/11
ASAHI KASEI
[AK4683]
DC CHARACTERISTICS (Ta=25C; AVDD1, AVDD2, DVDD, PVDD, HVDD=4.55.5V; TVDD=2.75.5V) Parameter Symbol min typ High-Level Input Voltage (Except XTI pin) VIH 2.2 (XTI pin) VIH 70%DVDD Low-Level Input Voltage (Except XTI pin) VIL (XTI pin) VIL Input Voltage at AC Coupling (XTI pin) (Note 17) VAC 40%DVDD High-Level Output Voltage (Except TX pins: Iout=-400A) VOH TVDD-0.4 (TX pin: Iout=-400A) VOH DVDD-0.4 Low-Level Output Voltage (Iout=400A) VOL Iin Input Leakage Current (Except RX0 pin) Notes: 17. In case of connecting capacitance to XTI pin. S/PDIF RECEIVER CHARACTERISTICS (RX0) (Ta=25C; AVDD1, AVDD2, DVDD, PVDD, HVDD=4.55.5V; TVDD=2.75.5V) Parameter Symbol min typ Input Resistance Zin 10 Input Voltage (internally biased at PVDD/2) VTH 200 Input Hysteresis VHY 50 Input Sample Frequency fs 32 PVDD 20k(typ) 20k(typ) PVSS VCOM
max 0.8 30%DVDD 0.4 10
Units V V V V Vpp V V V A
max
192
Units k mVpp mV kHz
RX0 pin
Internal biased pin Circuit
S/PDIF RECEIVER CHARACTERISTICS (RX1-3) (Ta=25C; AVDD1, AVDD2, DVDD, PVDD, HVDD=4.5~5.5V;TVDD=2.7~5.5V) Parameter Symbol min typ High-Level Input Voltage VIH 2.2 Low-Level Input Voltage VIL Input Sample Frequency fs 32 Iin Input Leakage Current -
max 0.8 192 10
Units V V kHz A
MS0427-E-01 - 11 -
2005/11
ASAHI KASEI
[AK4683]
SWITCHING CHARACTERISTICS (Ta=25C; AVDD1, AVDD2, DVDD, PVDD, HVDD=4.55.5V; TVDD=2.75.5V; CL=20pF; Note 18) Parameter Symbol min typ max Master Clock Timing Crystal Resonator Frequency fXTAL 11.2896 24.576 External Clock Frequency fECLK 4.096 24.576 Duty dECLK 40 50 60 24.576 4.096 fMCK MCKO Output Frequency 60 40 50 dMCLK Duty (Note 19) 33 dMCK (Note 20) PLL Clock Recover Frequency (RX0-3) fpll 32 192 Master Clock 12.288 8.192 fCLK 256fsn, 128fsd: 27 tCLKL Pulse Width Low 27 tCLKH Pulse Width High 18.432 12.288 fCLK 384fsn, 192fsd: 20 tCLKL Pulse Width Low 20 tCLKH Pulse Width High 24.576 16.384 fCLK 512fsn, 256fsd, 128fsq: 15 tCLKL Pulse Width Low 15 tCLKH Pulse Width High
LRCKA (LRCKB) Timing (Slave Mode) Normal mode Normal Speed Mode Double Speed Mode Quad Speed Mode Duty Cycle TDM 256 mode LRCKA frequency "H" time "L" time TDM 128 mode LRCKA frequency "H" time "L" time LRCKA (LRCKB) Timing (Master Mode) Normal mode Normal Speed Mode Double Speed Mode Quad Speed Mode Duty Cycle TDM 256 mode LRCKA frequency "H" time (Note 21) TDM 128 mode LRCKA frequency "H" time (Note 21) Power-down & Reset Timing PDN Pulse Width (Note 22) PDN "" to SDTO valid (Note 23)
Units MHz MHz % MHz % % kHz MHz ns ns MHz ns ns MHz ns ns
fsn fsd fsq Duty fsd tLRH tLRL fsd tLRH tLRL
32 64 120 45 32 1/256fs 1/256fs 64 1/128fs 1/128fs
48 96 192 55 48
kHz kHz kHz % kHz ns ns kHz ns ns
96
fsn fsd fsq Duty fsn tLRH fsd tLRH tPD tPDV
32 64 120 50 32 1/8fs 64 1/4fs 150 522
48 96 192
kHz kHz kHz % kHz ns kHz ns ns 1/fs
48
96
Notes: 18. SDTOA is specified against OLRCKA, SDTIA1-3 are measured against ILRCKA. 19. When MCKO1-0 bits = "01", "10" or MCKO1-0 bits = "00" and CKSDT bit = "0". 20. When MCKO1-0 bits = "00" and CKSDT bit = "1" and the EXTCLK is selected by CM1-0 bits. Duty = ("H" width) / (clock cycle) x 100 21. "L" time at I2S format 22. The AK4683 can be reset by bringing PDN "L" to "H" upon power-up. 23. These cycles are the number of LRCKA (LRCKB) rising from PDN rising. MS0427-E-01 - 12 2005/11
ASAHI KASEI
[AK4683]
Parameter Audio Interface Timing (Slave Mode) Normal mode BICKA (BICKB) Period BICKA (BICKB) Pulse Width Low Pulse Width High LRCKA (LRCKB) Edge to BICKA (BICKB) "" (Note 24) BICKA (BICKB) "" to LRCKA (LRCKB) Edge (Note 24) LRCKA (LRCKB) to SDTOA, SDTOB (MSB) BICKA (BICKB) "" to SDTOA, SDTOB SDTIA1-3, SDTIB Hold Time SDTIA1-3, SDTIB Setup Time TDM 256 mode BICKA Period BICKA Pulse Width Low Pulse Width High LRCKA Edge to BICKA "" (Note 24) BICKA "" to LRCKA Edge (Note 24) BICKA "" to SDTOA SDTIA1 Hold Time SDTIA1 Setup Time TDM 128 mode BICKA Period BICKA Pulse Width Low Pulse Width High LRCKA Edge to BICKA "" (Note 24) BICKA "" to LRCKA Edge (Note 24) BICKA "" to SDTOA SDTIA1-2 Hold Time SDTIA1-2 Setup Time Audio Interface Timing (Master Mode) Normal mode BICKA (BICKB) Frequency BICKA (BICKB) Duty BICKA (BICKB) "" to LRCKA (LRCKB) Edge BICKA (BICKB)"" to SDTO SDTIA1-3, B Hold Time SDTIA1-3, B Setup Time TDM 256 mode BICKA Frequency BICKA Duty (Note 25) BICKA "" to LRCKA Edge BICKA "" to SDTOA SDTIA1 Hold Time SDTIA1 Setup Time TDM 128 mode BICKA Frequency BICKA Duty (Note 26) BICKA "" to LRCKA Edge BICKA "" to SDTOA SDTIA1-2 Hold Time SDTIA1-2 Setup Time
Symbol
min
typ
max
Units
tBCK tBCKL tBCKH tLRB tBLR tLRS tBSD tSDH tSDS tBCK tBCKL tBCKH tLRB tBLR tBSD tSDH tSDS tBCK tBCKL tBCKH tLRB tBLR tBSD tSDH tSDS
81 32 32 20 20 20 20 20 20 81 32 32 20 20 20 10 10 81 32 32 20 20 20 10 10
ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns ns
fBCK dBCK tMBLR tBSD tSDH tSDS fBCK dBCK tMBLR tBSD tSDH tSDS fBCK dBCK tMBLR tBSD tSDH tSDS
64fs 50 -20 20 20 256fs 50 -12 10 10 128fs 50 -12 10 10 12 20 12 20 20 20
Hz % ns ns ns ns Hz % ns ns ns ns Hz % ns ns ns ns
Notes: 24. BICK rising edge must not occur at the same time as LRCK edge. 25. When MCLK2/XTI is 512fs, dBCK is guaranteed. When 384fs and 256fs, dBCK can not be guaranteed. 26. When MCLK2/XTI is 256fs, dBCK is guaranteed. When 128fs, dBCK can not be guaranteed.
MS0427-E-01 - 13 -
2005/11
ASAHI KASEI
[AK4683]
Parameter Control Interface Timing (4-wire serial mode) CCLK Period CCLK Pulse Width Low Pulse Width High CDTI Setup Time CDTI Hold Time CSN "H" Time CSN "" to CCLK "" CCLK "" to CSN "" CDTO Delay CSN "" to CDTO Hi-Z Control Interface Timing (I2C Bus mode) SCL Clock Frequency Bus Free Time Between Transmissions Start Condition Hold Time (prior to first clock pulse) Clock Low Time Clock High Time Setup Time for Repeated Start Condition SDA Hold Time from SCL Falling (Note 27 ) SDA Setup Time from SCL Rising Rise Time of Both SDA and SCL Lines Fall Time of Both SDA and SCL Lines Setup Time for Stop Condition Pulse Width of Spike Noise Suppressed by Input Filter Capacitive load on bus
Symbol tCCK tCCKL tCCKH tCDS tCDH tCSW tCSS tCSH tDCD tCCZ fSCL tBUF tHD:STA tLOW tHIGH tSU:STA tHD:DAT tSU:DAT tR tF tSU:STO Cb tSP
min 200 80 80 50 50 150 50 50
typ
max
Units ns ns ns ns ns ns ns ns ns ns kHz s s s s s s s s s s ns pF
45 70 4.7 4.0 4.7 4.0 4.7 0 0.25 4.0 0 100 1.0 0.3 50 400
Notes: 27. Data must be held for sufficient time to bridge the 300 ns transition time of SCL. 28. I2C is a registered trademark of Philips Semiconductors.
MS0427-E-01 - 14 -
2005/11
ASAHI KASEI
[AK4683]
Timing Diagram
1/fCLK VIH VIL tCLKH tCLKL
MCLK
1/fsn, 1/fsd, 1/fsq VIH VIL
LRCK
tBCK VIH VIL tBCKH tBCKL
BICK
Clock Timing (Normal mode)
1/fCLK VIH VIL tCLKH tCLKL
MCLK
1/fsn, 1/fsd VIH VIL tLRH tLRL
LRCK
tBCK VIH VIL tBCKH tBCKL
BICK
Clock Timing (TDM 256 mode, TDM 128 mode) LRCK= LRCKB, ILRCKA, OLRCKA, BICK= BICKA, BICKB, SDTI= SDTIA, SDTIB, SDTO= SDTOA, SDTOB.
MS0427-E-01 - 15 -
2005/11
ASAHI KASEI
[AK4683]
LRCK tBLR tLRB
VIH VIL
BICK
VIH VIL tLRS tBSD
SDTO tSDS
50%TVDD
tSDH VIH VIL
SDTI
Audio Interface Timing (Normal mode)
LRCK tBLR tLRB
VIH VIL
BICK
VIH VIL tBSD
SDTO tSDS
50%TVDD
tSDH VIH VIL
SDTI
Audio Interface Timing (TDM 256 mode, TDM 128 mode)
MS0427-E-01 - 16 -
2005/11
ASAHI KASEI
[AK4683]
LRCK
50%TVDD
tMBLR BICK 50%TVDD
tBSD 50%TVDD
SDTO tDXS tDXH
SDTI
VIH VIL
Audio Interface timing (Master Mode)
tPD PDN
VIL
Power Down & Reset Timing
MS0427-E-01 - 17 -
2005/11
ASAHI KASEI
[AK4683]
VIH CSN tCSS tCCK tCCKL tCCKH CCLK tCDH VIH VIL tCDS VIL
CDTI
C1
C0
R/W
A4
VIH VIL
CDTO
Hi-Z
WRITE/READ Command Input Timing in 4-wire serial mode The ADC/DAC part doesn't support READ command.
tCSW VIH CSN tCSH VIH VIL VIL
CCLK
CDTI
D3
D2
D1
D0
VIH VIL
CDTO
Hi-Z
WRITE Data Input Timing in 4-wire serial mode
VIH CSN VIL
CCLK
VIH VIL
CDTI
A1
A0
VIH VIL tDCD
CDTO
Hi-Z
D7
D6
D5
50%TVDD
READ Data Output Timing 1 in 4-wire serial mode The ADC/DAC part doesn't support READ command..
MS0427-E-01 - 18 -
2005/11
ASAHI KASEI
[AK4683]
tCSW CSN VIH VIL tCSH CCLK VIH VIL
CDTI
VIH VIL tCCZ
CDTO
D3
D2
D1
D0
Hi-Z
50%TVDD
READ Data Input Timing 2 in 4-wire serial mode The ADC/DAC part doesn't support READ command.
VIH SDA VIL tBUF tLOW tR tHIGH tF tSP VIH SCL VIL tHD:STA Stop Start tHD:DAT tSU:DAT tSU:STA Start tSU:STO Stop
I2C Bus mode Timing The ADC/DAC part doesn't support READ command.
tPD VIH VIL tPDV
PDN
SDTO
50%TVDD
Power-down & Reset Timing
MS0427-E-01 - 19 -
2005/11
ASAHI KASEI
[AK4683]
OPERATION OVERVIEW (General) Device Configuration and System Clocks
The AK4683 integrates the stereo ADC with input selector, 4ch DAC with stereo HP amp, DIT and DIT. The AK4683 has two serial audio interfaces (PORTA, B) for two input/output dataset (Figure 2). Each block can independently select the operation clock from the three clock sources (recovered clock from DIR (RMCLK), X'tal clock (XTI) and external clock (MCLK2)) and also input data source/output data destination. By using the Clock Gen C, the loop-back such as AD-DA can operate even if the PORTA/B are powered down.
DIR XTI MCLK2 MCKO0/1 bit
MCKO
DIR
DIR XTI MCLK2
PORTA
Clock Gen A
DIR XTI MCLK2
ADC
X'tal Oscillator (XTI)
CLKB0/1 bit DIR XTI MCLK2 CLKA0/1 bit
DIR
PORTB
Clock Gen B
XTI MCLK2
DAC
MCLK2
DIR XTI MCLK2 CLKL0/1 bit
DIR XTI
Clock Gen C
Note
MCLK2
DIT
Figure 2 System Clock Note: Each block must select the same clock source each other when connected. The operation will not be normal when the clock sources are not same among a connection. The ADC and DAC are synchronized to the clock source that the connected block uses. Even if the RMCLK is selected, the X'tal/MCLK2 may be chosen by the setting of CM1-0bits. DIR and DIT must be synchronized when these two blocks operates.
MS0427-E-01 - 20 -
2005/11
ASAHI KASEI
[AK4683]
X'tal Oscillator The following circuits are available to feed the clock to XTI pin of the AK4683. 1) X'tal
XTI
C 25k(typ) C
XTO
AK4683
Note: External capacitance depends on the crystal oscillator (Typ. 10-40pF) Figure 3. X'tal mode
2) External clock - Note: Input clock must not exceed DVDD.
XTI
External Clock
External Clock C
XTI
25k(typ)
25k(typ)
XTO AK4683
XTO AK4683
(Input: CMOS Level) Figure 4 (5V). (a). External clock mode
(Input: 40%DVDD, C=0.1F) Figure 5 (3.3V). (b). External clock mode
3) XTI/XTO are not used
XTI
25k(typ)
XTO AK4683
Figure 6. OFF mode
MS0427-E-01 - 21 -
2005/11
ASAHI KASEI
[AK4683]
Master Clock Output The AK4683 has one master clock output pin. The clock source can be selected from the three clocks (recovered clock from DIR (RMCLK), X'tal clock (XTI) and external clock (MCLK2)). When the DIR is powered-down or unlocked state at CM1/0 bit = "10", the CLKDT bit selects the clock source. The OCKS1/0 bits select the clock speed. The 512fs at fs=96kHz, 256fs/512fs at fs=192kHz are not available. CM1 bit 0 0 1 1 CM0 bit 0 1 0 1 UNLOCK 0 1 Clock Source RMCLK EXTCLK RMCLK EXTCLK EXTCLK
Table 1. Clock Mode Control CLKDT bit 0 1 Clock Source XTI MCLK2
Default
Table 2. EXTCLK Control OCKS1 bit 0 0 1 1 OCKS0 bit 0 1 0 1 MCLKO(RMCLK) 256fs 256fs 512fs 128fs fs (max) 96 kHz 96 kHz 48 kHz 192 kHz
Table 3. MCLKO Speed MCKO1 bit 0 0 1 1 MCKO0 bit 0 1 0 1 MCKO Clock Source DIR X'tal(XTI) MCLK2 Reserved
default
Table 4. MCKO Clock Source Control
OCKS1/0 bit
PLL
RMCLK
EXTCLK x2/3 CKSDT bit CLKDT bit CM0/1 bit
X'tal Oscillator (XTI)
DIR XTI MCLK2 MCKO0/1 bit
MCKO
MCLK2
Figure 7. MCKO Clock
MS0427-E-01 - 22 -
2005/11
ASAHI KASEI
[AK4683]
Master/Slave Mode Change
MSA and MSB bits control the master/slave mode of PORTA and PORTB respectively. The "1" is for master mode, "0" is for slave mode. The AK4683 is slave mode at power-down (PDN pin = "L"). To change to the master mode, write "1" to MSA/MSB bit. The ACKSAI, ACKSAO and ACKSB bits are ignored in master mode. Until when writing "1" to MSA/MSB bit, the ILRCKA, OLRCKA, BICKA, LRCKB and BICKB pin are input pins. Pull-up(or down) resistor with around 100kohm is required to prevent the floating of these input pins. MSA, MSB bit Mode 0 Slave Mode (default) 1 Master Mode Table 5. Select Master/Salve Mode
Other Detection Function
The FUNC1-0 bit selects the function of VOUT pin. Mode 0 1 2 3 FUNC1 0 0 1 1 FUNC0 Mode 0 OFF ("L") 1 ADC Overflow Detection 0 DAC Zero Detection 1 V bit output Table 6. Detection Function Control
Default
1. Overflow Detection
The AK4683 has overflow detect function for analog input. Overflow detect function is enable if OVFE bit is set to "1". OVF pin goes to "H" if analog input of Lch or Rch overflows (more than -0.3dBFS). OVF output for overflowed analog input has the same group delay as ADC (GD = 19/fs = 396s @fs=48kHz). OVF pin is "L" for 522/fs (=10.9ms @fs=48kHz) after PDN = "", and then overflow detection is enabled. The overflow detection is applied to the data between the digital HPF and the DATT.
2. Zero Detection
The AK4683 has one pin for zero detect flag output. The DZFM1-0 bits select the channel grouping (Table 7). The DZF pin goes "H" when all of the enabled channels are continuously zeros for 8192 LRCK cycles. DZF pin immediately goes to "L" if input data of any enabled channel is not zero after going DZF "H". Mode 0 1 2 3 DZFM1 bit 0 0 1 1 DZFM0 bit 0 1 0 1 AOUT R1 L2 Enable Enable Enable Enable -
L1 Enable Enable -
R2 Enable Enable -
(default)
Table 7. Zero Detection Control
3. Validity Detection
The AK4683 has Validity Detection function. DIR decodes the V bit and output "H" via pin. When unlocked, "L" is output.
MS0427-E-01 - 23 -
2005/11
ASAHI KASEI
[AK4683]
OPERATION OVERVIEW (ADC/DAC/PORTA, B part) System Clock
The AK4683 has two audio serial interface (PORTA, B), can operate these PORTs with asynchronous. At each PORT, the external clocks, which are required to operate the AK4683, are MCLK, LRCK and BICK. The MCLK should be synchronized with LRCK but the phase is not critical. The CLKA1-0, CLKB1-0bits select the clock sources for each PORT (Table 8, Table 9). The MSA and MSB bits select the master/slave mode (Table 16, Table 17). The block that is connected to PORTA/B and the block that is connected to the PORT indirectly operate at the same clock as the PORTA/B selects. e. g. When the DAC selects the ADC data while the PORTB selects the ADC data also, the DAC operates same clock as the PORTB selects. The block that isn't connected to PORTA/B is automatically connected to the Clock Gen C and operates the same clock as the Clock Gen C selects with the CLKL1-0 bits (Table 10). In master mode, the CKSIA2-0, OLRA1-0, BICKAF, CKSB2-0 bits select the clock frequency (Table 11, Table 12 , Table 13, Table 14). In master mode, external clock (MCLK) should always be supplied except in the power-down mode. The AK4683 is in power-down mode until MCLK will be supplied, when reset was canceled by Power-ON and so on. At PORTA, the input/output data has independent LRCK (ILRCKA/OLRCKA) and common BICK (BICKA). The ILRCK and OLRCK can operate at different sample rate but synchronized each other (Table 12). In slave mode, external clocks (MCLK, BICK, LRCK) should always be present whenever the AK4683 is in normal operation mode (PDN pin = "H"). The master clock (MCLK) should be synchronized with LRCK but the phase is not critical. If these clocks are not provided, the AK4683 may draw excess current because the device utilizes dynamic refreshed logic internally. If the external clocks are not present, the AK4683 should be in the power-down mode (PDN pin = "L") or in the reset mode (RSTN1 bit = "0"). After exiting reset at power-up etc., the AK4683 is in the power-down mode until MCLK and LRCK are input. When the block selects RMCLK as clock source, the sample rate of the PORT in the master mode or ADC/DAC connecting to the Clock Gen C is forced to the same rate as DIR. The DFSAD, DFSDA1-0 bits should be controlled properly.
MS0427-E-01 - 24 -
2005/11
ASAHI KASEI
[AK4683]
CLKA1 bit 0 0 1 1
CLKA0 bit 0 1 0 1
PORTA Clock Source DIR X'tal(XTI) MCLK2 Reserved
default)
Table 8. PORTA Clock Source Control
CLKB1 bit 0 0 1 1
CLKB0 bit 0 1 0 1
PORTB Clock Source DIR X'tal(XTI) MCLK2 Reserved
default)
Table 9. PORTB Clock Source Control
CLKL1 bit 0 0 1 1
CLKL0 bit 0 1 0 1
Clock Gen C Clock Source DIR X'tal (XTI) MCLK2 Reserved
(default)
Table 10. Clock Gen C Clock Source Control
CKSAI2 0 0 0 0 1 1 1 1
CKSAI1 0 0 1 1 0 0 1 1
CKSAI0 0 1 0 1 0 1 0 1
Clock Speed 128fs 192fs 256fs 384fs 512fs Reserved Reserved Reserved
(default)
Table 11. PORTA Input Data Clock Control (Master Mode)
OLRA1 bit OLRA0 bit OLRCKA Clock Freq 0 0 ILRCKA x 1 0 1 ILRCKA x 1/2 1 0 ILRCKA x 2 1 1 Reserved Note: Select OLRA1-0 bits = "00" in TDM mode. Table 12. OLRCKA Clock Mode Control
(default)
MS0427-E-01 - 25 -
2005/11
ASAHI KASEI
[AK4683]
BCAF bit PORTA BICK Frequency Mode 0 ILRCK x 64 (default) 1 ILRCK x128 Note: ILRCK x 128 is available when the MCLK=ILRCK x 256 or higher. BCAF bit is ignored in TDM mode. Table 13. PORTA BICK Control (Master Mode) CKSB2 0 0 0 0 1 1 1 1 CKSB1 0 0 1 1 0 0 1 1 CKSB0 0 1 0 1 0 1 0 1 Clock Speed 128fs 192fs 256fs 384fs 512fs Reserved Reserved Reserved
(default)
Table 14. PORTB Data Clock Control (Master Mode)
CKSL2 0 0 0 0 1 1 1 1
CKSL1 0 0 1 1 0 0 1 1
CKSL0 0 1 0 1 0 1 0 1
Clock Speed 128fs 192fs 256fs 384fs 512fs Reserved Reserved Reserved
(default)
Table 15. Clock Gen C Clock Control
In master mode, LRCKA (LRCKB) pin, BICKA (BICKB) pin are output pins. In slave mode, these are input pins (Table 18). MSA bit 0 1 PORTA Master/Slave Mode Slave Master Table 16. PORTA Master/Slave Control
(default)
MSB bit 0 1
PORTB Master/Slave Mode Slave Master Table 17. PORTB Master/Slave Control
(default)
MS0427-E-01 - 26 -
2005/11
ASAHI KASEI
[AK4683]
PDN pin L H H
LRCKA BICKA (LRCKB) pin (BICKB) pin Slave Input Input Slave Input (*) Input (*) "0" Master "L" output L" output Slave Input Input "1" Master Output Output (*): These are input pins, but input signals are ignored internally. Table 18. LRCKA (LRCKB) pin, BICKA (BICKB) pin
PWPOA(PWPOB) bit
Master/Slave
The SDTOB1-0, SDTOA1-0 bits select the output data source of each PORT. SDTOB1 bit 0 0 1 1 SDTOB0 bit 0 1 0 1 SDTOB Source DIR ADC off SDTIA1 (default)
Table 19. SDTOB Source Control
SDTOA1 bit 0 0 1 1
SDTOA0 bit 0 1 0 1
SDTOA Source DIR ADC SDTIB off (default)
Table 20. SDTOA Source Control
MS0427-E-01 - 27 -
2005/11
ASAHI KASEI
[AK4683]
ADC, DAC Control
There are two modes for controlling the sampling speed for ADC and DAC. One is the Manual Setting Mode using the DFSAD1-0, DFSDA1-0 bits, and the other is Auto Setting Mode. When the block connects to both PORTA and PORTB, the PORTA setting is used. 1. Manual Setting Mode When the ADC and DAC are connected to each PORT placed in Manual Setting Mode, the sampling speed are selected by DFSAD, DFSDA1-0 bits (Table 21, Table 22). The frequencies and the duties of the clocks (ILRCKA, OLRCKA, LRCKB, BICKA, BICKB) may be unstable for the moment when changing the sampling speed mode. DFSAD0 0 1 Sampling Speed (fs) Normal Speed Mode 32kHz~48kHz Double Speed Mode 64kHz~96kHz
Default
Table 21.ADC sampling speed (Manual Setting Mode)
DFSDA1 0 0 1 1
DFSDA0 0 1 0 1
Sampling Speed (fs) Normal Speed Mode 32kHz~48kHz Double Speed Mode 64kHz~96kHz Quad Speed Mode 120kHz~192kHz Not Available -
Default
Table 22.DAC sampling speed (Manual Setting Mode)
LRCKA (LRCKB) fs 32.0kHz 44.1kHz 48.0kHz
MCLK (MHz) 256fs 384fs 512fs 8.1920 12.2880 16.3840 11.2896 16.9344 22.5792 12.2880 18.4320 24.5760 (Normal Speed Mode @Manual Setting Mode) Table 23. system clock example
BICKA (BICKB) (MHz) 64fs 2.0480 2.8224 3.0720
128fs 192fs 256fs 11.2896 16.9344 22.5792 12.2880 18.4320 24.5760 (Double Speed Mode @Manual Setting Mode) (Note: ADC is not available for 128fs and 192fs at Double Speed Mode (DFSAD="1")) Table 24. system clock example
LRCKA (LRCKB) fs 88.2kHz 96.0kHz
MCLK (MHz)
BICKA (BICKB) (MHz) 64fs 5.6448 6.1440
MS0427-E-01 - 28 -
2005/11
ASAHI KASEI
[AK4683]
LRCKA (LRCKB) Fs 176.4kHz 192.0kHz
MCLK (MHz)
128fs 192fs 256fs 22.5792 24.5760 (Quad Speed Mode @Manual Setting Mode) (Note: ADC is not available at the Quad Speed Mode) Table 25. system clock example
BICKA (BICKB) (MHz) 64fs 11.2896 12.2880
2. Auto Setting Mode (ACSKAD/ACSKDA bit = "1") When the ADC and DACs are connected to each PORT placed in Auto Setting Mode, MCLK frequency is detected automatically (Table 26) and the internal master clock is set to the appropriate frequency (Table 27). In this mode, the setting of DFSAD, DFSDA1-0 bits are ignored.
MCLK 512fs 256fs 128fs
Sampling Speed Normal Double Quad
Table 26. Sampling Speed (Auto Setting Mode) LRCKA (LRCKB) fs 32.0kHz 44.1kHz 48.0kHz 88.2kHz 96.0kHz 176.4kHz 192.0kHz MCLK (MHz) 128fs 22.5792 24.5760 256fs 22.5792 24.5760 512fs 16.3840 22.5792 24.5760 Sampling Speed Normal Double Quad
Table 27. System clock example (Auto Setting Mode)
MS0427-E-01 - 29 -
2005/11
ASAHI KASEI
[AK4683]
The DAC12-10, DAC22-20 bits select the output data for each DAC. DAC1 and DAC2 must be connected to the same PORT. DAC12 bit 0 0 0 0 1 1 1 1 DAC11 bit 0 0 1 1 0 0 1 1 DAC10 bit 0 1 0 1 0 1 0 1 DAC1 Source DIR ADC SDTIB SDTIA1 (default) SDTIA2 SDTIA3 Reserved Reserved
Table 28. DAC1 Source Control
DAC22 bit 0 0 0 0 1 1 1 1
DAC21 bit 0 0 1 1 0 0 1 1
DAC20 bit 0 1 0 1 0 1 0 1
DAC2 Source DIR ADC SDTIB SDTIA1 SDTIA2 (default) SDTIA3 Reserved Reserved
Table 29. DAC2 Source Control
MS0427-E-01 - 30 -
2005/11
ASAHI KASEI
[AK4683]
De-emphasis Filter
The AK4683 includes the digital de-emphasis filter (tc=50/15s) by IIR filter. De-emphasis filter is not available in Double Speed Mode and Quad Speed Mode. This filter corresponds to three sampling frequencies (32kHz, 44.1kHz, 48kHz). De-emphasis of each DAC can be set individually by register. Mode 0 1 2 3 Sampling Speed Normal Speed Normal Speed Normal Speed Normal Speed DEM1 0 0 1 1 DEM0 0 1 0 1 DEM 44.1kHz OFF 48kHz 32kHz
Default
Table 30. De-emphasis control
Digital High Pass Filter
The ADC has a digital high pass filter for DC offset cancel. The cut-off frequency of the HPF is 1.0Hz at fs=48kHz and scales with sampling rate (fs).
Audio Serial Interface Format
Each PORTA/B can select independent audio interface format. The TDMA1-0, DIFA1-0 bits control the audio format for PORTA and support normal mode, TDM256 mode and TDM128 mode. The DIFB1-0 bits control the audio format for PORTB and support only normal mode. The default is mode 2. In all modes the serial data is MSB-first, 2's complement format. The SDTO pins are clocked out on the falling edge of BICK pins and the SDTI pins are latched on the rising edge of BICK pins. 1. Setting for the PORTA 1-1. Normal mode: TDMA1-0 bit = "00" The TDMA1-0 bits = "00" set the AK4683 audio serial interface format to the normal mode. The DIFB1-0 bits select following eight serial data format (Table 31). Mode 0 1 2 3 4 5 6 7 Master /slave LRCKA BICKA I/O I/O Slave 0 0 24bit, L J 20bit, R J H/L I I 48fs Slave 0 1 24bit, L J 24bit, R J H/L I I 48fs Slave 1 0 24bit, L J 24bit, L J H/L I I 48fs Slave 1 1 24bit, I2S 24bit, I2S L/H I I 48fs Master 0 0 24bit, L J 20bit, R J H/L O 64fs O Master 0 1 24bit, L J 24bit, R J H/L O 64fs O Master 1 0 24bit, L J 24bit, L J H/L O 64fs O Master 1 1 24bit, I2S 24bit, I2S L/H O 64fs O Table 31 Audio Interface Format (Normal mode, L J: Left justified, R J: Right justified.) DIFA1 DIFA0 SDTOA SDTIA1-3
default
MS0427-E-01 - 31 -
2005/11
ASAHI KASEI
[AK4683]
1-2. TDM 256 mode: TDMA1-0 bit = "01" The TDMA1-0 bits = "01" set the AK4683 audio serial interface format to the TDM 256 mode. The serial data of all SDTIA (1,2,3) is input to the SDTIA1 pin. The input data to SDTIA2-3 pins is ignored. BICKA should be fixed to 256fs. "H" time and "L" time of I/OLRCKA pin should be 1/256fs at least. The DIFA1-0 bits select eight modes. Mode 8 9 10 11 12 13 14 15 LRCKA BICKA Master DIFA1 DIFA0 SDTOA SDTIA1-3 /slave I/O I/O Slave 0 0 24bit, L J 20bit, R J I 256fs I Slave 0 1 24bit, L J 24bit, R J I 256fs I Slave 1 0 24bit, L J 24bit, L J I 256fs I Slave 1 1 24bit, I2S 24bit, I2S I 256fs I Master 0 0 24bit, L J 20bit, R J O 256fs O O 256fs O Master 0 1 24bit, L J 24bit, R J Master 1 0 24bit, L J 24bit, L J O 256fs O Master 1 1 24bit, I2S 24bit, I2S O 256fs O Table 32. Audio Interface Format (TDM 256 mode, L J: Left justified, R J: Right justified.)
default
1-3. TDM 128 mode: TDMA1-0 bit = "11" The TDMA1-0 bits = "11" set the AK4683 audio serial interface format to the TDM 1286 mode. The four channel serial data (SDTIA1, 2) is input to the SDTIA1 pin. Other two channel data (SDTIA3) is input to the SDTIA2 pin. Mode 16 17 18 19 20 21 22 23 LRCKA BICKA Master DIFA1 DIFA0 SDTOA SDTIA1-3 /slave I/O I/O Slave 0 0 24bit, L J 20bit, R J I 128fs I Slave 0 1 24bit, L J 24bit, R J I 128fs I Slave 1 0 24bit, L J 24bit, L J I 128fs I Slave 1 1 24bit, I2S 24bit, I2S I 128fs I Master 0 0 24bit, L J 20bit, R J O 128fs O Master 0 1 24bit, L J 24bit, R J O 128fs O Master 1 0 24bit, L J 24bit, L J O 128fs O Master 1 1 24bit, I2S 24bit, I2S O 128fs O Table 33. Audio Interface Format (TDM 128 mode, L J: Left justified, R J: Right justified.)
default
2. Setting for the PORTB 2-1: Normal mode: The PORTB supports only the normal mode. The DIFB1-0 bits select following eight serial data format (Table 34). Mode 0 1 2 3 4 5 6 7 Master /slave LRCKB BICKB I/O I/O Slave 0 0 24bit, L J 20bit, R J H/L I I 48fs Slave 0 1 24bit, L J 24bit, R J H/L I I 48fs Slave 1 0 24bit, L J 24bit, L J H/L I I 48fs Slave 1 1 24bit, I2S 24bit, I2S L/H I I 48fs Master 0 0 24bit, L J 20bit, R J H/L O 64fs O Master 0 1 24bit, L J 24bit, R J H/L O 64fs O Master 1 0 24bit, L J 24bit, L J H/L O 64fs O Master 1 1 24bit, I2S 24bit, I2S L/H O 64fs O Table 34. Audio Interface Format (Normal mode, L J: Left justified, R J: Right justified.) DIFB1 DIFB0 SDTOB SDTIB
default
MS0427-E-01 - 32 -
2005/11
ASAHI KASEI
[AK4683]
LRCK
0 1 2 12 13 14 24 25 31 0 1 2 12 13 14 24 25 31 0 1
BICK(64fs) SDTO(o) SDTI(i)
23 22 12 11 10 19 18 0 8 7 1 0 23 22 12 11 10 19 18 0 8 7 1 0 23
Don't Care
Don't Care
SDTO-23:MSB, 0:LSB; SDTI-19:MSB, 0:LSB Lch Data
Rch Data
Figure 8. Mode 0,4 Timing
LRCK
0 1 2 8 9 10 24 25 31 0 1 2 8 9 10 24 25 31 0 1
BICK(64fs) SDTO(o) SDTI(i)
23 22 16 15 14 23 22 0 8 7 1 0 23 22 16 15 14 23 22 0 8 7 1 0 23
Don't Care 23:MSB, 0:LSB
Don't Care
Lch Data
Rch Data
Figure 9. Mode 1 ,5 Timing
LRCK
0 1 2 21 22 23 24 28 29 30 31 0 1 2 22 23 24 28 29 30 31 0 1
BICK(64fs) SDTO(o) SDTI(i)
23 22 23 22 2 2 1 1 0 0 23 22 2 2 1 1 0 0 23
Don't Care
23 22
Don't Care
23
23:MSB, 0:LSB
Lch Data
Rch Data
Figure 10.Mode 2,6 Timing
LRCK
0 1 2 3 22 23 24 25 29 30 31 0 1 2 3 22 23 24 25 29 30 31 0 1
BICK(64fs) SDTO(o) SDTI(i)
23 22 23 22 2 2 1 1 0 0 23 22 2 2 1 1 0 0
Don't Care
23 22
Don't Care
23:MSB, 0:LSB
Lch Data
Rch Data
Figure 11. Mode 3 ,7 Timing
MS0427-E-01 - 33 -
2005/11
ASAHI KASEI
[AK4683]
256 B ICK
LRCKA (m ode 8) LRCKA (m ode 12) BICKA(256fs) SDTOA(o)
23 22 0 23 22 0 23 22
Lch
32 B ICK
Rch
32 B ICK
0 19 18 0 19 18 0 19 18 0 19 18 0 19 18 0 19
SDTIA1(i)
19 18
L1
32 B ICK
R1
32 B ICK
L2
32 BICK
R2
32 B ICK
L3
32 B ICK
R3
32 BICK 32 BICK 32 B ICK
Figure 12. Mode 8 ,12 Timing
256 B ICK
LRCKA (m ode 9) LRCKA (m ode 13) BICKA(256fs) SDTOA(o)
23 22 0 23 22 0 23 22
Lch
32 B ICK
Rch
32 B ICK
0 23 22 0 23 22 0 23 22 0 23 22 0 23 22 0 23
SDTIA1(i)
23 22
L1
32 B ICK
R1
32 B ICK
L2
32 BICK
R2
32 B ICK
L3
32 B ICK
R3
32 BICK 32 BICK 32 B ICK
Figure 13. Mode 9 ,13 Timing
256 B ICK
LRCKA (m ode 10) LRCKA (m ode 14) BICKA(256fs) SDTOA(o)
23 22 0 23 22 0 23 22
Lch
32 B ICK
Rch
32 B ICK
23 22 0 23 22 0 23 22 0 23 22 0 23 22 0 23 22
SDTIA1(i)
23 22
0
L1
32 B ICK
R1
32 B ICK
L2
32 BICK
R2
32 B ICK
L3
32 B ICK
R3
32 BICK 32 BICK 32 B ICK
Figure 14. Mode 10 ,14 Timinig
256 B ICK
LRCKA (m ode 11) LRCKA (m ode 15) BICKA(256fs) SDTOA(o)
23 0 23 0 23
Lch
32 B ICK
Rch
32 B ICK
23 0 23 0 23 0 23 0 23 0 23
SDTIA1(i)
23
0
L1
32 B ICK
R1
32 B ICK
L2
32 BICK
R2
32 B ICK
L3
32 B ICK
R3
32 BICK 32 BICK 32 B ICK
Figure 15. Mode 11 ,15 Timing
MS0427-E-01 - 34 -
2005/11
ASAHI KASEI
[AK4683]
128 B ICK
LRCKA (m ode 16) LRCKA (m ode 20) BICKA(128fs) SDTOA(o)
23 22 0 23 22 0 23 22
Lch
32 BICK
Rch
32 B ICK
0 19 18 0 19 18 0 19 18 0 19
SDTIA1(i)
19 18
L1
32 BICK
R1
32 B ICK
0 19 18 0
L2
32 BICK
R2
32 BICK
19
SDTIA2(i)
19 18
L3
32 BICK
R3
32 B ICK 32 B ICK 32 BICK
Figure 16. Mode 16 ,20 Timing
128 B ICK
LRCKA (m ode 17) LRCKA (m ode 21) BICKA(128fs)
23 22 0 23 22 0 23 22
Lch
32 BICK
Rch
32 B ICK
0 23 22 0 23 22 0 23 22 0 19
SDTIA1(i)
23 22
L1
32 BICK
R1
32 B ICK
0 23 22 0
L2
32 BICK
R2
32 BICK
19
SDTIA2(i)
23 22
L3
32 BICK
R3
32 B ICK 32 B ICK 32 BICK
Figure 17. Mode 17 ,21 TIming
128 B ICK
LRCKA (m ode 18) LRCKA (m ode 22) BICKA(128fs) SDTOA(o)
23 22 0 23 22 0 23 22
Lch
32 BICK
Rch
32 B ICK
0 23 22 0 23 22 0 23 22 0 23 22
SDTIA1(i)
23 22
L1
32 BICK
R1
32 B ICK
0 23 22 0
L2
32 BICK
R2
32 BICK
23 22
SDTIA2(i)
23 22
L3
32 BICK
R3
32 B ICK 32 BICK 32 BICK
Figure 18. Mode 18 ,22 Timing
MS0427-E-01 - 35 -
2005/11
ASAHI KASEI
[AK4683]
128 B ICK
LRCKA (m ode 19) LRCKA (m ode 23) BICKA(128fs) SDTOA(o)
23 22 0 23 22 0 23
Lch
32 BICK
Rch
32 B ICK
0 23 22 0 23 22 0 23 22 0 23
SDTIA1(i)
23 22
L1
32 BICK
R1
32 B ICK
0 23 22 0
L2
32 BICK
R2
32 BICK
23
SDTIA2(i)
23 22
L3
32 BICK
R3
32 B ICK 32 B ICK 32 BICK
Figure 19. Mode 19 ,23 Timing
MS0427-E-01 - 36 -
2005/11
ASAHI KASEI
[AK4683]
Digital Volume Control
The AK4683 has channel-independent digital volume control (256 levels, 0.5dB step). The ATTAD7-0 bit set the volume level of each ADC channel (Table 35), ATTDA7-0 set each DAC channel (Table 36). ATTAD7-0 00H 01H 02H : 2FH 30H 31H FEH FFH Attenuation Level +24dB +23.5dB +22.0dB : +0.5dB 0dB -0.5dB : -103dB MUTE (-)
(default)
Table 35.ADC Digital Volume
ATTDA7-0 00H 01H 02H : 17H 18H 19H FEH FFH
Attenuation Level +12dB +11.5dB +11.0dB : +0.5dB 0dB -0.5dB : -115dB MUTE (-)
(default)
Table 36.DAC Digital Volume Transition time between set values of ATTAD7-0 (ATTDA7-0) bits can be selected by ATSAD (ATSDA) bits (Table 37, Table 38). Transition between set values is the soft transition. Therefore, the switching noise does not occur in the transition. Mode 0 1 ATSAD 0 1 ATT speed 1061/fs 256/fs
(default)
Table 37. Transition time between set values of ATTAD7-0 bits (ADC)
Mode 0 1
ATSDA 0 1
ATT speed 1061/fs 256/fs
(default)
Table 38. Transition time between set values of ATTDA7-0 bits (DAC) The transition between set values is soft transition of 1061 levels in mode 0. It takes 1061/fs (24ms@fs=48kHz) from 00H to FFH(MUTE) in mode 0. If PDN pin goes to "L", the ATTAD7-0(ATTDA7-0) bits are initialized to 30H(18H). The ATTs goes to their default value when RSTN bit = "0". When RSTN1 bit return to "1", the ATTs fade to their current value.
MS0427-E-01 - 37 -
2005/11
ASAHI KASEI
[AK4683]
Soft mute operation
The ADC and DAC have the soft mute function. The soft mute operation is performed at digital domain. When the SMAD/SMDA bits go to "1", the output signal is attenuated by - during ATT_DATAxATT transition time (Table 37, Table 38) from the current ATT level. When the SMAD/SMDA bits are returned to "0", the mute is cancelled and the output attenuation gradually changes to the ATT level during ATT_DATAxATT transition time. If the soft mute is cancelled before attenuating to - after starting the operation, the attenuation is discontinued and returned to ATT level by the same cycle. The soft mute is effective for changing the signal source without stopping the signal transmission.
SMAD/SMDA bits (1) (1) (3)
ATT Level Attenuation
-
GD (2) AOUT (4) 8192/fs GD
DZF (for SMDA)
Notes: (1) ATT_DATAxATT transition time (Table 37, Table 38). For example, in Normal Speed Mode, this time is 1061/fs cycles (1792/fs) at ATT_DATA=00H. ATT transition of the soft-mute is from 00H to FFH (2) The analog output corresponding to the digital input has a group delay, GD. (3) If the soft mute is cancelled before attenuating to - after starting the operation, the attenuation is discontinued and returned to ATT level by the same cycle. (4) When the input data at all the channels of the group are continuously zeros for 8192 cycles, DZF pin of each channel goes to "H". DZF pin immediately goes to "L" if the input data of either channel of the group are not zero after going DZF "H". Figure 20. Soft mute and zero detection
MS0427-E-01 - 38 -
2005/11
ASAHI KASEI
[AK4683]
Input Selector, Input Attenuator
The AK4683 includes 6ch stereo input selectors (Figure 21). The input selector is 6 to 1 selector. The AIN2-0 bits set the input channel (Table 39). AIN2 bit 0 0 0 0 1 1 1 1 AIN1 bit 0 0 1 1 0 0 1 1 AIN0 bit 0 1 0 1 0 1 0 1 Input Selector LIN1 / RIN1 LIN2 / RIN2 LIN3 / RIN3 LIN4 / RIN4 LIN5 / RIN5 LIN5 / RIN5 None None
Default
Table 39. Input Selector The input ATTs are constructed by adding the input resistor (Ri) for LIN1-6/RIN1-6 pins and the feedback resistor (Rf) between LOPIN (ROPIN) pin and LOUT (ROUT) pin (Figure 21). The voltage range of the LISEL(RISEL) pin should be less than typ. 0.62 x AVDD1 (Vpp). If the input voltage of the input selector exceeds typ. 0.62 x AVDD, the input voltage of the LISEL(RISEL) pins must be attenuated to typ. 0.62 x AVDD1 (Vpp) by the input ATTs. The Table 40 shows the example of Ri and Rf.
Rf L O P IN Ri Ri Ri Ri Ri Ri L IN 1 L IN 2 L IN 3 L IN 4 L IN 5 L IN 6 To ADC P re -A m p L IS E L
Ri Ri Ri Ri Ri Ri
R IN 1 R IN 2 R IN 3 P re -A m p R IN 4 R IN 5 R IN 6 To ADC
R O P IN
R IS E L Rf
Figure 21. Input ATT Input Range LISEL/R pin 1.02Vrms 4Vrms 47 12 -11.86 (2.88Vpp) 1.02Vrms 2Vrms 47 24 -5.84 (2.88Vpp) 1Vrms 1Vrms 47 47 0 (2.82Vpp) Note: Input range of internal ADC is 0.62 x AVDD1 (5V) = 3.1Vpp typ. Ri [k] Rf [k] Table 40. Input ATT example ATT Gain [dB]
MS0427-E-01 - 39 -
2005/11
ASAHI KASEI
[AK4683]
[Input selector switching sequence] The input selector should be changed after soft mute to avoid the switching noise of the input selector (Figure 22). 1. Enable the soft mute before changing channel. 2. Change channel. 3. Disable the soft mute.
SM U T E (1) (2) (1)
D AT T Level Attenuation
-
C hannel LIN 1/R IN 1 LIN 2/R IN 2
Figure 22. Input channel switching sequence example
The period of (1) varies in the setting value of DATT. It takes 1028/fs to mute when DATT value is +24dB. When changing channels, the input channel should be changed during (2). The period of (2) should be around 200ms because there is some DC difference between the channels.
MS0427-E-01 - 40 -
2005/11
ASAHI KASEI
[AK4683]
Power ON/OFF Sequence
The each block of the AK4683 are placed in the power-down mode by bringing PDN pin "L" and both digital filters are reset at the same time. PDN pin "L" also reset the control registers to their default values. In the power-down mode, the analog outputs go to VCOM voltage and SDTOA,B, DZF/OVF pin go to "L". This reset should always be done after power-up. In slave mode, after exiting reset at power-up etc., the AK4683 starts to operate from the rising edge of LRCK after MLCK, then the device is in the power-down mode until MCLK and LRCK are input. In slave mode or Internal Loop Mode, the AK4683 starts to operate by the input of MLCK after exiting reset. The analog initialization cycle of ADC starts after exiting the power-down mode. Therefore, the output data, SDTO becomes available after 522/fs cycles of LRCK clock. In case of the DAC, an analog initialization cycle starts after exiting the power-down mode. The analog outputs are VCOM voltage during the initialization. Figure 23 hows the sequences of the power-down and the power-up. The ADC and all DACs can be powered-down individually by PWAD bit and PWDA1-2 bits. These bits don't initialize the internal register values. When PWAD bit = "0" and selecting ADC, the SDTOA(SDTOB) pin goes to "L". When PWDA1-2 bits = "0", the analog outputs go to VCOM voltage and DZF/OVF pin go to "H". Since some click noise may occur, the analog output should muted externally if the click noise influences system application.
Power PDN
522/fs
(1)
ADC Internal State DAC Internal State
Init Cycle 516/fs
Normal Operation
Power-down
(2)
Normal Operation GD (3) GD Power-down
Init Cycle
ADC In (Analog) ADC Out (Digital) DAC In (Digital)
"0"data (4)
(5)
"0"data
"0"data
"0"data GD
(3)
GD
DAC Out (Analog) Clock In
MCLK,LRCK,SCLK
Don't care
(6)
(6)
(7)
Don't care 1011/fs (10)
DZF1/DZF2
(8)
External Mute
(9)
Mute ON
Mute ON
Notes: (1) The analog part of ADC is initialized after exiting the power-down state. (2) The analog part of DAC is initialized after exiting the power-down state. (3) Digital output corresponding to analog input and analog output corresponding to digital input have the group delay (GD). (4) ADC output is "0" data at the power-down state. (5) Click noise occurs at the end of initialization of the analog part. Please mute the digital output externally if the click noise influences system application. (6) Click noise occurs at the falling edge of PDN and at 512/fs(DAC1) and 512/fs +96ms(DAC2) after the rising edge of PDN. (7) When the external clocks (MCLK, BICKA (BICKB), LRCKA (LRCKB)) are stopped, the AK4683 should be in the power-down mode. (8) DZF/OVF pin is "L" in the power-down mode (PDN pin = "L"). (9) Please mute the analog output externally if the click noise (6) influences system application. (10) DZF pin = "L" for 1011/fs after PDN= "". Figure 23. Power-down/up sequence example
MS0427-E-01 - 41 -
2005/11
ASAHI KASEI
[AK4683]
Status of analog output pins during power-down (PDN pin ="L")
The status of analog output pins is as follows. Pin Name HPL/HPR LOUT1/ROUT1/LOUT2/ROUT2 LISEL/RISEL
HVSS VCOM Hi-Z
Reset Function
When RSTN1 bit = "0", ADC and DACs are powered-down but the internal register are not initialized. The analog outputs go to VCOM voltage, DZF/OVF pin goes to "H" and SDTOA/B pins go to "L". Because some click noise occurs, the analog output should muted externally if the click noise influences system application. The Figure 24 shows the power-up sequence.
RSTN bit
4~5/fs (9) 1~2/fs (9)
Internal RSTN bit
516/fs (1)
ADC Internal State DAC Internal State ADC In (Analog) ADC Out (Digital) DAC In (Digital)
Normal Operation
Digital Block Power-down
Init Cycle
Normal Operation
Normal Operation GD (2)
Digital Block Power-down
Normal Operation GD
(3)
"0"data
(4)
"0"data
(2)
GD GD
DAC Out (Analog) Clock In
MCLK,LRCK,SCLK
(6)
(5)
(6)
(7)
Don't care
45/fs (8)
DZF1/DZF2
Notes: (1) The analog part of ADC is initialized after exiting the reset state. (2) Digital output corresponding to analog input and analog output corresponding to digital input have the group delay (GD). (3) ADC output is "0" data at the power-down state. (4) Click noise occurs when the internal RSTN bit becomes "1". Please mute the digital output externally if the click noise influences system application. (5) When RSTN1 bit = "0", the analog outputs go to VCOM voltage. (6) Click noise occurs at 45/fs after RSTN1 bit becomes "0", and occurs at 12/fs after RSTN1 bit becomes "1". This noise is output even if "0" data is input. (7) The external clocks (MCLK, BICKA (BICKB), LRCKA (LRCKB)) can be stopped in the reset mode. When exiting the reset mode, "1" should be written to RSTN1 bit after the external clocks (MCLK, BICKA (BICKB), LRCKA (LRCKB)) are fed. (8) DZF pins go to "H" when the RSTN1 bit becomes "0", and go to "L" at 6~7/fs after RSTN1 bit becomes "1". (9) There is a delay, 4~5/fs from RSTN1 bit "0" to the internal RSTN bit "0". Figure 24. Reset sequence example MS0427-E-01 - 42 2005/11
ASAHI KASEI
[AK4683]
Headphone Output
Power supply voltage for the Headphone-Amp is supplied from the HVDD pin and centered on the HVDD/2 voltage. When the MUTEN bit is "0", the common voltage of Headphone-Amp falls and the outputs (HPL and HPR pins) go to "L" (HVSS). When the MUTEN bit is "1", the common voltage rises to HVDD/2. A capacitor between the MUTET pin and ground reduces click noise at power-up. Rise/Fall time constant is proportional to HVDD voltage and the capacitor at MUTET pin. [Example]: A capacitor between the MUTET pin and ground = 1.0F, HVDD=5V: Rise/fall time constant: = 120ms(typ) When PWPD bit is "0", the Headphone-Amp is powered-down, and the outputs (HPL and HPR pins) go to "L" (HVSS).
PWHP bit
MUTEN bit HPL pin, HPR pin
(1) (2)
(3)
()
()
Figure 25. Power-up/Power-down Timing for Headphone-Amp (1) Headphone-Amp power-up (PWHP bit = "1"). The outputs are still HVSS. (2) Headphone-Amp common voltage rises up (MUTEN bit = "1"). Common voltage of Headphone-Amp is rising.
(3) Start the audio output after finishing the setup pf common voltage to prevent the clipping.
(4) Headphone-Amp common voltage falls down (MUTEN bit = "0"). Common voltage of Headphone-Amp is falling. (5) Headphone-Amp power-down (PWHP bit = "0"). The outputs are HVSS. If the power supply is switched off or Headphone-Amp is powered-down before the common voltage goes to HVSS, some CLICK noise occurs. The cut-off frequency (fc) of Headphone-Amp depends on the external resistor and capacitor. Table 41 shows the cut off frequency and the output power for various resistor/capacitor combinations. The headphone impedance RL is 16. Output powers are shown at HVDD = 5V.
HP-AMP R C
Headphone 16
AK4683
Figure 26. External Circuit Example of Headphone R [] 0 6.8 16 C [F] 220 100 100 47 100 47 fc [Hz] 45 100 70 149 50 106 Table 41. External Circuit Example MS0427-E-01 - 43 2005/11 Output Power [mW]@0dBFS 50 25 12.5
ASAHI KASEI
[AK4683]
Output Analog Volume (OPGA)
Volume range of the output analog volume is 0dB to -50dB and MUTE with by zero crossing detection. The OPGA operates with the clock for DAC. The zero crossing detection of Lch and Rch is worked independently. If there are no zero-crossings, the level will then change after a timeout period; the timeout period scales with fs. When ZCE is "0", it is changed immediately without zero crossing detection. When writing to OPGA4-0 bits continually, it should take an interval of zero crossing timeout period or more. If the OPGA4-0 bits are changed before zero crossing. OPGA4-0 1FH 1EH 1DH : 10H 0FH 0EH 0DH : 05H 04H 03H 02H 01H 00H GAIN(dB) +0 -1 -2 : -15 -16 -18 -20 : -36 -38 -42 -46 -50 MUTE STEP LEVEL
1dB
17
2dB
11
4dB
3 1 (default)
Table 42. Output Analog Volume Setting
When ZCE bit is "1", the Lch/Rch volume level are changed independently by zero crossing detection or zero crossing timeout operation. The count of timer is doubled when DAC double speed mode, four times when DAC quad speed mode. DAC2 Sampling Speed Normal Speed Mode Double Speed Mode Quad Speed Mode Zero crossing timeout 768/fs (16ms @fs=48kHz) 1536/fs (16ms @fs=96kHz) 3072/fs (16ms @fs=192kHz)
Table 43. Zero crossing timeout The OPGA is enable at PWDA bit = PWDA2 bit = "1". The initializing of OPGA starts when DAC is powered up. This initializing cycle is 96ms(@fs=48kHz). Writing to the OPGA4-0 during the initialization is ignored. The default volume value is mute after power up. Initialization time is 512/fs+96ms(@fs=48kHz) after PDN pin = "H". DAC2 Sampling Speed Normal Speed Mode Double Speed Mode Quad Speed Mode OPGA Initialization Time 4608/fs (96ms @fs=48kHz) 9216/fs (96ms @fs=96kHz) 18432/fs (96ms @fs=192kHz)
Table 44. OPGA Initialization Time
MS0427-E-01 - 44 -
2005/11
ASAHI KASEI
[AK4683]
OPERATION OVERVIEW (DIR/DIT part)
192kHz Clock Recovery On chip low jitter PLL has a wide lock range with 32kHz to 192kHz and the lock time is less than 20ms. The AK4683 has the sampling frequency detect function. By either the clock comparison against X'tal oscillator or using the channel status, the AK4683 detects the sampling frequency (32kHz, 44.1kHz, 48kHz, 88.2kHz, 96kHz, 176.4kHz and 192kHz). The PLL loses lock when the received sync interval is incorrect.
Clock Operation Mode When DIR is selected. the CM0/CM1 bits select the clock source and the data source of SDTO. In Mode 2, the clock source is automatically switched from PLL to XTI/MCLK2 when PLL goes unlock state. In Mode 3, the clock source is fixed to XTI/MCLK2, but PLL is also operating and the recovered data such as C bits can be monitored. For Mode 2 and 3, it is recommended that the frequency of XTI/MCLK2 is different from the recovered frequency from PLL. Mode 0 1 2 3 CM1 0 0 1 1 UNLOCK PLL Clock source SDTO ON PLL RX OFF EXTCLK DIT source 0 ON PLL RX 0 1 ON EXTCLK DIT source 1 ON EXTCLK DIT source ON: Oscillation (Power-up), OFF: STOP (Power-down) Table 45. Clock Operation Mode select CM0 0 1
(default)
When 384fs of XTI/MCLK2 is supplied to DIR/DIT, CKSDT bit should be set to "1". CKSDT bit 0 1 Clock Speed x1 x 2/3 Table 46. XTI/MCLK2 speed
(default)
MS0427-E-01 - 45 -
2005/11
ASAHI KASEI
[AK4683]
Sampling Frequency and Pre-emphasis Detection The AK4683 has two methods for detecting the sampling frequency as follows. 1. Clock comparison between recovered clock and XTI/MCLK2 2. Sampling frequency information on channel status Those could be selected by XTL1, 0 bits. And the detected frequency is reported on FS3-0 bits. XTL1 0 0 1 1 XTL0 0 1 0 1 XTI/MCLK2 Frequency 11.2896MHz 12.288MHz 24.576MHz (Use channel status)
default
Table 47. Reference XTI/MCLK2 frequency XTL1,0= "1,1" Consumer Register output fs mode Professional mode Clock comparison (Note 2) (Note 1) Byte3 Byte0 Byte4 FS3 FS2 FS1 FS0 Bit3,2,1,0 Bit7,6 Bit6,5,4,3 0 0 0 0 44.1kHz 44.1kHz 0000 01 0000 0 0 0 1 Reserved Reserved 0001 (Others) 0 0 1 0 48kHz 48kHz 0010 10 0000 0 0 1 1 32kHz 32kHz 0011 11 0000 1 0 0 0 88.2kHz 88.2kHz (1000) 00 1010 1 0 1 0 96kHz 96kHz (1010) 00 0010 1 1 0 0 176.4kHz 176.4kHz (1100) 00 1011 1 1 1 0 192kHz 192kHz (1110) 00 0011 Note1: At least 3% range is identified as the value in the Table 48. In case of intermediate frequency of those two, FS3-0 bits indicate nearer value. When the frequency is much bigger than 192kHz or much smaller than 32kHz, FS3-0 bits may indicate "0001". Note2: When consumer mode, Byte3 Bit3-0 are copied to FS3-0 bits. Table 48. fs Information Except XTL1,0= "1,1"
The pre-emphasis information is detected and reported on PEM bit. This information is extracted from channel 1 at default. It can be switched to channel 2 by CS12 bit in control register. PEM 0 1 Pre-emphasis OFF ON Byte 0 Bits 3-5 0X100 0X100
Table 49. PEM in Consumer Mode PEM 0 1 Pre-emphasis OFF ON Byte 0 Bits 2-4 110 110
Table 50. PEM in Professional Mode
MS0427-E-01 - 46 -
2005/11
ASAHI KASEI
[AK4683]
De-emphasis Filter Control The AK4683 includes the digital de-emphasis filter (tc=50/15s) by IIR filter corresponding to four sampling frequencies (32kHz, 44.1kHz, 48kHz and 96kHz). When DEAU bit="1", the de-emphasis filter is enabled automatically by sampling frequency and pre-emphasis information in the channel status. The AK4683 goes this mode at default. Therefore, in Parallel Mode, the AK4683 is always placed in this mode and the status bits in channel 1 control the de-emphasis filter. In Serial Mode, DEM0/1 and DFS bits can control the de-emphasis filter when DEAU bit is "0". The internal de-emphasis filter is bypassed and the recovered data is output without any change if either pre-emphasis or de-emphasis Mode is OFF. PEM 1 1 1 1 1 0 FS3 0 0 0 1 x FS2 0 0 0 0 (Others) x x x FS1 0 1 1 1 FS0 0 0 1 0 Mode 44.1kHz 48kHz 32kHz 96kHz OFF OFF
Table 51. De-emphasis Auto Control at DEAU bit = "1" (default) PEM 1 1 1 1 1 1 1 1 0 DFS 0 0 0 0 1 1 1 1 x DEM1 0 0 1 1 0 0 1 1 x DEM0 0 1 0 1 0 1 0 1 x Mode 44.1kHz OFF 48kHz 32kHz OFF OFF 96kHz OFF OFF
(default)
Table 52. De-emphasis Manual Control at DEAU bit = "0"
System Reset and Power-Down The AK4683 has a power-down mode for all circuits by PDN pin can be partially powerd-down by PWN bit. The RSTN2 bit initializes the register and resets the internal timing. The AK4683 should be reset once by bringing PDN pin = "L" upon power-up. PDN pin: All analog and digital circuit are placed in the power-down and reset mode by bringing PDN pin = "L". All the registers are initialized, and clocks are stopped. Reading/Witting to the register are disabled. RSTN2 bit (Address 00H; D0): All the registers except PWN and RSTN2 bits are initialized by bringing RSTN2 bit = "0". The internal timings are also initialized. When RSTN2 bit = "0", the clock are output but SDTO pin is hold to "L". Witting to the register is not available except PWN and RSTN2 bits. Reading to the register is disabled. PWN bit (Address 00H; D1): The clock recovery part is initialized by bringing PWN bit = "0". In this case, clocks from PLL are stopped. The registers are not initialized and the mode settings are kept. Writing and Reading to the registers are enabled.
MS0427-E-01 - 47 -
2005/11
ASAHI KASEI
[AK4683]
Biphase Input and Through Output Eight receiver inputs (RX0-3) are available in Serial Control Mode. Only the RX0 input includes amplifier corresponding to unbalance mode and can accept the signal of 200mV or more. IPS1-0 bits select the receiver channel. The V bit can be output via pin. IPS1 bit 0 0 1 1 IPS0 bit 0 1 0 1 DIR Source RX0 RX1 RX2 RX3
(default)
Table 53. Recovery Data Select
(B) 1/4fs VOUT
C(R191)
V(L0)
V(R0)
V(L1)
V(L39)
V(R39) V(L40)
SDTO
R190
L191
R191
L0
L38
R38
L39
LRCK (except I2S) LRCK (I2S)
Figure 27. V output timings
MS0427-E-01 - 48 -
2005/11
ASAHI KASEI
[AK4683]
Biphase Output The AK4683 can output either the through output (from RX) or transmitter output (DIT) via TX pin. Those could be selected by DIT bit. The source of the through output from TX0 could be selected among RX0-3 by OPS0, 1 bits. When output DIT data, V bit could be controlled by VIN bit and first 5 bytes of C bit could be controlled by CT39-CT0 bits in control registers. When bit0= "0"(consumer mode), bit20-23 (Audio channel) could not be controlled directly but be controlled by CT20 bit. When the CT20 bit is "1", the AK4683 outputs "1000" as C20-23 for left channel and outputs "0100" at C20-23 for right channel automatically. When CT20 bit is "0", the AK4683 outputs "0000" set as "1000" for sub frame 1, and "0100" for sub frame 2. U bits are fixed to "0". DIT bit 0 0 0 0 1 OPS1 bit 0 0 1 1 * OPS0 bit 0 1 0 1 * TX Source RX0 RX1 RX2 RX3 DIT
(default)
Table 54. TX Source Control The CLKDT bit selects the clock source of DIT. This clock must be the same clock as the clock sources of PORT connecting to DIT. CM1 CM0 UNLOCK Clock Source (default) 0 0 PLL 0 1 EXTCLK 0 PLL 1 0 1 EXTCLK 1 1 EXTCLK Table 55. Clock Mode Control CLKDT bit 0 1 Clock Source XTI MCLK2
Table 56. EXTCLK Control CKSDT 0 0 0 0 1 1 1 1 OCKS1 0 0 1 1 0 0 1 1 OCKS0 0 1 0 1 0 1 0 1 EXTCLK 256fs 256fs 512fs 128fs 384fs 384fs 768fs 192fs fs(max) 96kHz 96kHz 48kHz 192kHz 48kHz 48kHz 32kHz 96kHz
Table 57. MCLKO Speed
MS0427-E-01 - 49 -
2005/11
ASAHI KASEI
[AK4683]
The DITD1-0 bits control the data source of DIT. DITD1 bit 0 0 1 1 DITD0 bit 0 1 0 1 DIT Source DIR ADC SDTIB SDTIA1(default)
Table 58. DIT Source Control
Biphase signal input/output circuit (RX0, TX)
0.1uF 75 Coax RX0 75
AK4683
Figure 28. Consumer Input Circuit (Coaxial Input) Note: In case of coaxial input, if a coupling level to this input from the next RX input line pattern exceeds 50mV, there is a possibility to occur an incorrect operation. In this case, it is possible to lower the coupling level by adding this decoupling capacitor.
Optical Receiver Optical Fiber O/E
470 RX0-3
AK4683
Figure 29. Consumer Input Circuit (Optical Input) In case of coaxial input, as the input level of RX0 line is small, be careful not to crosstalk among RX input lines. For example, by inserting the shield pattern among them. The AK4683 includes the TX output buffer. The output level meets combination 0.5V+/-20% using the external resistor network. The T1 in Figure 30 is a transformer of 1:1.
3302% TX 1002% DVSS T1 75 cable
Figure 30. TX External Resistor Network
MS0427-E-01 - 50 -
2005/11
ASAHI KASEI
[AK4683]
Q-subcode buffers The AK4683 has Q-subcode buffer for CD application. The AK4683 takes Q-subcode into registers by following conditions. 1. The sync word (S0,S1) is constructed at least 16 "0"s. 2. The start bit is "1". 3. Those 7bits Q-W follows to the start bit. 4. The distance between two start bits are 8-16 bits. The QINT bit in the control register goes "1" when the new Q-subcode differs from old one, and goes "0" when QINT bit is read.
S0 S1 S2 S3 : S97 S0 S1 S2 S3 :
1 0 0 1 1 : 1 0 0 1 1 :
2 3 4 5 6 7 8 * 0 0 0 0 0 0 0 0... 0 0 0 0 0 0 0 0... Q2 R2 S2 T2 U2 V2 W2 0... Q3 R3 S3 T3 U3 V3 W3 0... : : : : : : : : Q97 R97 S97 T97 U97 V97 W97 0... 0 0 0 0 0 0 0 0... 0 0 0 0 0 0 0 0... Q2 R2 S2 T2 U2 V2 W2 0... Q3 R3 S3 T3 U3 V3 W3 0... : : : : : : : :
Q (*) number of "0" : min=0; max=8. Figure 31. Configuration of U-bit(CD)
Q9 Q10 Q11 Q12 Q13 Q14 Q15 Q16 Q17 Q18 Q19 Q20 Q21 Q22 Q23 Q24 Q25 TRACK NUMBER INDEX
Q2
Q3 Q4 CTRL
Q5
Q6
Q7 Q8 ADRS
Q26 Q27 Q28 Q29 Q30 Q31 Q32 Q33 Q34 Q35 Q36 Q37 Q38 Q39 Q40 Q41 Q42 Q43 Q44 Q45 Q46 Q47 Q48 Q49 MINUTE SECOND FRAME Q50 Q51 Q52 Q53 Q54 Q55 Q56 Q57 Q58 Q59 Q60 Q61 Q62 Q63 Q64 Q65 Q66 Q67 Q68 Q69 Q70 Q71 Q72 Q73 ZERO ABSOLUTE MINUTE ABSOLUTE SECOND Q74 Q75 Q76 Q77 Q78 Q79 Q80 Q81 Q82 Q83 Q84 Q85 Q86 Q87 Q88 Q89 Q90 Q91 Q92 Q93 Q94 Q95 Q96 Q97 ABSOLUTE FRAME CRC G(x)=x16+x12+x5+1
Figure 32. Q-subcode Addr 16H 17H 18H 19H 1AH 1BH 1CH 1DH 1EH 1FH Register Name Q-subcode Address / Control Q-subcode Track Q-subcode Index Q-subcode Minute Q-subcode Second Q-subcode Frame Q-subcode Zero Q-subcode ABS Minute Q-subcode ABS Second Q-subcode ABS Frame D7 Q9 Q17 *** *** *** *** *** *** *** Q81 D6 Q8 Q16 *** *** *** *** *** *** *** Q80 D5 *** *** *** *** *** *** *** *** *** *** D4 *** *** *** *** *** *** *** *** *** *** D3 *** *** *** *** *** *** *** *** *** *** D2 *** *** *** *** *** *** *** *** *** *** D1 Q3 Q11 *** *** *** *** *** *** *** Q75 D0 Q2 Q10 *** *** *** *** *** *** *** Q74
Figure 33. Q-subcode register
MS0427-E-01 - 51 -
2005/11
ASAHI KASEI
[AK4683]
Error Handling There are the following eight events that make INT pin "H". INT pin show the status of following conditions. 1. UNLOCK: "1" when the PLL loses lock. The AK4683 loses lock when the distance between two preambles is not correct or when those preambles are not correct. 2. PAR: "1" when parity error or biphase coding error is detected, and keeps "1" until this register is read. Updated every sub-frame cycle. Reading this register resets itself. 3. AUTO: "1" when Non-PCM bitstream is detected. Updated every 4096 frames cycle. 4. DTSCD: "1" when DTS-CD bitstream is detected. Updated every DTS-CD sync cycle. 5. AUDION: "1" when the "AUDIO" bit in recovered channel status indicates "1". Updated every block cycle. 6. PEM: "1" when "PEM" in recovered channel status indicates "1". Updated every block cycle. 7. QINT: "1" when Q-subcode differ from old one, and keeps "1" until this register is read. Updated every sync code cycle for Q-subcode. Reading this register resets itself. 8. CINT: "1" when received C bits differ from old one, and keeps "1" until this register is read. Updated every block cycle. Reading this register resets itself. INT pin is fixed to "L" when the PLL is off (CM1,0= "01"). Once the INT pin goes to "H", this pin holds "H" for 1024/fs cycles (this value can be changed by EFH0/1 bits) after those events are removed. INT pin can mask those eight events individually. Once PAR, QINT and CINT bit goes to "1", those registers are held to "1" until those registers are read. While the AK4683 loses lock, registers regarding C-bit or U-bits are not initialized and keep previous value.
INT pin outputs the ORed signal among those eight events. However, each mask bits can mask each event. When each bit masks those events, the event does not affect INT pin operation (those mask do not affect those registers (UNLOCK, PAR, etc.) themselves. Once INT pin goes "H", it maintains "H" for 1024/fs cycles (this value can be changed by EFH0-1 bits) after the all events are removed. Once those PAR, QINT or CINT bit goes "1", it holds "1" until reading those registers. While the AK4683 loses lock, the channel status Q-subcode bits are not updated and hold the previous data. At initial state, INT outputs the ORed signal between UNLOCK and PAR. Event DTSCD AUDION x x x x x x 1 x x 1 x x x x x x Pin SDTO* V* TX* "L" "L" Output Previous Data Output Output Output Output Output Output Output Output Output Output Output Output Output Output Output Output Output Output Output Output Note: when selected.
UNLOCK 1 0 0 0 0 0 0 0
PAR x 1 0 0 0 0 0 0
AUTO x x 1 x x x x x
PEM x x x x x 1 x x
QINT x x x x x x 1 x
CINT x x x x x x x 1
Table 59. Error Handling
MS0427-E-01 - 52 -
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ASAHI KASEI
[AK4683]
Error (UNLOCK, PAR,..) INT pin Register (PAR,CINT,QINT) Register (others) Command MCKO, BICK, LRCK (UNLOCK) note MCKO, BICK, LRCK (except UNLOCK) note SDTO (UNLOCK) note SDTO (PAR error) note SDTO (others) note Vpin (UNLOCK) note Vpin (except UNLOCK) note
(Error)
Hold Time (max: 4096/fs)
Hold "1"
Reset
READ 06H
Free Run (fs: around 20kHz)
Previous Data
Normal Operation
note: When DIR is selected as source. Figure 34. INT0/1 pin timing
MS0427-E-01 - 53 -
2005/11
ASAHI KASEI
[AK4683]
PDN pin ="L" to "H" Initialize Read 06H
INT pin ="H"
Yes
No
Release Muting
Mute DAC output
Read 06H
(Each Error Handling)
Read 06H (Resets registers) No
INT pin ="H"
Yes
Figure 35. Error Handling Sequence Example 1
MS0427-E-01 - 54 -
2005/11
ASAHI KASEI
[AK4683]
PDN pin ="L" to "H" Initialize Read 06H
INT pin ="H"
Yes
No
Read 06H and Detect QSUB= "1"
(Read Q-buffer)
QCRC = "0" Yes INT pin ="L" Yes New data is valid
No
New data is invalid
No
Figure 36. Error Handling Sequence Example 2 (for Q/CINT)
MS0427-E-01 - 55 -
2005/11
ASAHI KASEI
[AK4683]
Non-PCM (AC-3, MPEG, etc.) and DTS-CD Bitstream Detection The AK4683 has a Non-PCM steam auto-detection function. When the 32bit mode Non-PCM preamble based on Dolby "AC-3 Data Stream in IEC60958 Interface" is detected, the AUTO bit goes "1". The 96bit sync code consists of 0x0000, 0x0000, 0x0000, 0x0000, 0xF872 and 0x4E1F. Detection of this pattern will set the AUTO bit "1". Once the AUTO bit is set "1", it will remain "1" until 4096 frames pass through the chip without additional sync pattern being detected. When those preambles are detected, the burst preambles Pc and Pd that follow those sync codes are stored to registers. The AK4683 also has the DTS-CD bitstream auto-detection function. When The AK4683 detects DTS-CD bitstreams, DTSCD bit goes to "1". When the next sync code does not come within 4096 flames, DTSCD bit goes to "0" until when the AK4683 detects the stream again.
Burst Preambles in non-PCM Bitstreams
sub-frame of IEC958
0 preamble 34 Aux. 78 11 12 LSB 27 28 29 30 31 MSB V U C P
16 bits of bitstream
0 15
Pa Pb Pc Pd
Burst_payload
stuffing
repetition time of the burst
Figure 37. Data structure in IEC60958 Preamble word Pa Pb Pc Pd Length of field 16 bits 16 bits 16 bits 16 bits Contents sync word 1 sync word 2 Burst info Length code Value 0xF872 0x4E1F see Table 61 Numbers of bits
Table 60. Burst preamble words
MS0427-E-01 - 56 -
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ASAHI KASEI
[AK4683]
Bits of Pc 0-4
Value
Contents data type NULL data Dolby AC-3 data reserved PAUSE MPEG-1 Layer1 data MPEG-1 Layer2 or 3 data or MPEG-2 without extension MPEG-2 data with extension MPEG-2 AAC ADTS MPEG-2, Layer1 Low sample rate MPEG-2, Layer2 or 3 Low sample rate reserved DTS type I DTS type II DTS type III ATRAC ATRAC2/3 reserved reserved, shall be set to "0" error-flag indicating a valid burst_payload error-flag indicating that the burst_payload may contain errors data type dependent info bit stream number, shall be set to "0" Table 61. Fields of burst info Pc
Repetition time of burst in IEC60958 frames 4096 1536
5, 6 7
0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16-31 0 0 1
384 1152 1152 1024 384 1152 512 1024 2048 512 1024
8-12 13-15
0
(Refer the IEC standards.)
MS0427-E-01 - 57 -
2005/11
ASAHI KASEI
[AK4683]
Non-PCM Bitstream timing 1) When Non-PCM preamble is not coming within 4096 frames,
PDN pin
Bit stream
Pa Pb Pc1 Pd1 Repetition time
Pa Pb Pc2 Pd2 >4096 frames
Pa Pb Pc3 Pd3
AUTO bit
Pc Register
"0"
Pc1
Pc2
Pc3
Pd Register
"0"
Pd1
Pd2
Pd3
Figure 38. Timing example 1
2) When Non-PCM bitstream stops (when MULK0=0),
INT0 pin <20mS (Lock time) Bit stream Pa Pb Pc1 Pd1 Stop 2~3 Syncs (B,M or W) AUTO bit Pc Register
Pc0
Pc1
Pcn
Pd Register
Pd0
Pd1
Pdn
Figure 39. Timing example 2
MS0427-E-01 - 58 -
2005/11
ASAHI KASEI
[AK4683]
OPERATION OVERVIEW (ADC/DAC part, DIR/DIT part)
Serial Control Interface The AK4683 has two registers, which are ADC/DAC part and DIR/DIT part. Each register is set by chip address pin. (1). 4-wire serial control mode (I2C pin = "L") The internal registers may be either written or read by the 4-wire P interface pins: CSN, CCLK, CDTI & CDTO. The data on this interface consists of Chip address (2bits, C1-C0="10" for ADC/DAC part, "00" for DIR/DIT part), Read/Write (1bit), Register address (MSB first, 5bits) and Control data (MSB first, 8bits). Address and data is clocked in on the rising edge of CCLK and data is clocked out on the falling edge. For write operations, data is latched after the 16th rising edge of CCLK, after a high-to-low transition of CSN. For read operations, the CDTO output goes high impedance after a low-to-high transition of CSN. The maximum speed of CCLK is 5MHz. PDN pin = "L" resets the registers to their default values. When the state of P/S pin is changed, the AK4683 should be reset by PDN pin = "L". Register of ADC/DAC part can not read.
CSN
0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15
CCLK
CDTI WRITE CDTO CDTI READ CDTO
C1 C0 R/W A4 A3 A2 A1 A0 D7 D6 D5 D4 D3 D2 D1 D0
Hi-Z
C1 C0 R/W A4 A3 A2 A1 A0 D7 D6 D5 D4 D3 D2 D1 D0
Hi-Z
D7 D6 D5 D4 D3 D2 D1 D0
Hi-Z
C1-C0: R/W: A4-A0: D7-D0:
Chip Address: (Fixed to "10" for ADC/DAC part, "00" for DIR/DIT part) READ/WRITE (0:READ, 1:WRITE) Register Address Control Data Figure 40. 4-wire Serial Control I/F Timing
MS0427-E-01 - 59 -
2005/11
ASAHI KASEI
[AK4683]
(2). I2C bus control mode (I2C pin = "H") AK4683 supports the standard-mode I2C-bus (max: 100kHz). Then AK4683 does not support a fast-mode I2C-bus system (max: 400kHz). (2)-1. Data transfer All commands are preceded by a START condition. After the START condition, a slave address is sent. After the AK4683 recognizes the START condition, the device interfaced to the bus waits for the slave address to be transmitted over the SDA line. If the transmitted slave address matches an address for one of the devices, the designated slave device pulls the SDA line to LOW (ACKNOWLEDGE). The data transfer is always terminated by a STOP condition generated by the master device. (2)-1-1. Data validity The data on the SDA line must be stable during the HIGH period of the clock. The HIGH or LOW state of the data line can only change when the clock signal on the SCL line is LOW except for the START and the STOP condition.
SCL
SDA
DATA LINE STABLE : DATA VALID
CHANGE OF DATA ALLOWED
Figure 41. Data transfer (2)-1-2. START and STOP condition A HIGH to LOW transition on the SDA line while SCL is HIGH indicates a START condition. All sequences start from the START condition. A LOW to HIGH transition on the SDA line while SCL is HIGH defines a STOP condition. All sequences end by the STOP condition.
SCL
SDA
START CONDITION
STOP CONDITION
Figure 42. START and STOP conditions
MS0427-E-01 - 60 -
2005/11
ASAHI KASEI
[AK4683]
(2)-1-3. ACKNOWLEDGE ACKNOWLEDGE is a software convention used to indicate successful data transfers. The transmitting device will release the SDA line (HIGH) after transmitting eight bits. The receiver must pull down the SDA line during the acknowledge clock pulse so that that it remains stable "L" during "H" period of this clock pulse. The AK4683 will generates an acknowledge after each byte has been received. In the read mode, the slave, the AK4683 will transmit eight bits of data, release the SDA line and monitor the line for an acknowledge. If an acknowledge is detected and no STOP condition is generated by the master, the slave will continue to transmit data. If an acknowledge is not detected, the slave will terminate further data transmissions and await the STOP condition. The register of ADC/DAC part can not generate acknowledge for READ operations.
Clock pulse for acknowledge
SCL FROM MASTER
1
8
9
DATA OUTPUT BY TRANSMITTER not acknowledge DATA OUTPUT BY RECEIVER START CONDITION acknowledge
Figure 43. Acknowledge on the I2C-bus (2)-1-4. FIRST BYTE The first byte, which includes seven bits of slave address and one bit of R/W bit, is sent after the START condition. If the transmitted slave address matches an address for one of the device, the receiver who has been addressed pulls down the SDA line. The most significant five bits of the slave address are fixed as "00100". The next two bits are CAD1 and CAD0 (device address bits). These two bits identify the specific device on the bus. The eighth bit (LSB) of the first byte (R/W bit) defines whether a write or read condition is requested by the master. A "1" indicates that the read operation is to be executed. A "0" indicates that the write operation is to be executed.
0
0
1
0
0
CAD1
CAD0
R/W
(CAD1-CAD0 = fixed to "10" for ADC/DAC part, "00" for DIR/DIT part) Figure 44. The First Byte
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2005/11
ASAHI KASEI
[AK4683]
(2)-2. WRITE Operations Set R/W bit = "0" for the WRITE operation of the AK4683. After receipt the start condition and the first byte, the AK4683 generates an acknowledge, and awaits the second byte (register address). The second byte consists of the address for control registers of AK4683. The format is MSB first, and those most significant 3-bits are "Don't care".
*
*
*
A4
A3
A2
A1
A0
(*: Don't care) Figure 45. The Second Byte After receipt the second byte, the AK4683 generates an acknowledge, and awaits the third byte. Those data after the second byte contain control data. The format is MSB first, 8bits.
D7
D6
D5
D4
D3
D2
D1
D0
Figure 46. Byte structure after the second byte The AK4683 is capable of more than one byte write operation by one sequence. After receipt of the third byte, the AK4683 generates an acknowledge, and awaits the next data again. The master can transmit more than one words instead of terminating the write cycle after the first data word is transferred. After the receipt of each data, the internal 5bits address counter is incremented by one, and the next data is taken into next address automatically. If the address exceed 1FH prior to generating the stop condition, the address counter will "roll over" to 00H and the previous data will be overwritten.
S T A R T Slave Address Register Address(n) S T Data(n+x) O P P A C K A C K A C K A C K
Data(n)
Data(n+1)
SDA
S
Figure 47. WRITE Operation
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2005/11
ASAHI KASEI
[AK4683]
(2)-3. READ Operations Set R/W bit = "1" for the READ operation of the AK4683. After transmission of a data, the master can read next address's data by generating the acknowledge instead of terminating the write cycle after the receipt the first data word. After the receipt of each data, the internal 5bits address counter is incremented by one, and the next data is taken into next address automatically. If the address exceed 1FH prior to generating the stop condition, the address counter will "roll over" to 00H and the previous data will be overwritten. The AK4683 supports two basic read operations: CURRENT ADDRESS READ and RANDOM READ. ADC/DAC part register can not read. (2)-3-1. CURRENT ADDRESS READ The AK4683 contains an internal address counter that maintains the address of the last word accessed, incremented by one. Therefore, if the last access (either a read or write) was to address n, the next CURRENT READ operation would access data from the address n+1. After receipt of the slave address with R/W bit set to "1", the AK4683 generates an acknowledge, transmits 1byte data which address is set by the internal address counter and increments the internal address counter by 1. If the master does not generate an acknowledge to the data but generate the stop condition, the AK4683 discontinues transmission
S T A R T Slave Address S Data(n+x) T O P P A C K A C K A C K A C K
Data(n)
Data(n+1)
Data(n+2)
SDA
S
Figure 48. CURRENT ADDRESS READ (2)-3-2. RANDOM READ Random read operation allows the master to access any memory location at random. Prior to issuing the slave address with the R/W bit set to "1", the master must first perform a "dummy" write operation. The master issues the start condition, slave address(R/W="0") and then the register address to read. After the register address's acknowledge, the master immediately reissues the start condition and the slave address with the R/W bit set to "1". Then the AK4683 generates an acknowledge, 1byte data and increments the internal address counter by 1. If the master does not generate an acknowledge to the data but generate the stop condition, the AK4683 discontinues transmission.
S T A R T S T A R T S A C K A C K A C K A C K A C K
Slave Address
Word Address(n)
Slave Address
Data(n)
Data(n+1)
S Data(n+x) T O P P
SDA
S
Figure 49. RANDOM READ
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ASAHI KASEI
[AK4683]
Register Map (ADC/DAC part)
Addr 00H 01H 02H 03H 04H 05H 06H 07H 08H 09H 0AH 0BH 0CH 0DH 0EH 0FH 10H 11H 12H 13H
Register Name Powerdown 1 Powerdown 2 Clock Select 1 Clock Select 2 Clock Select 3 Clock Select 4 Sampling Speed Data Source Select 1 Data Source Select 2 Analog Input Control Audio Data Format De-emphasis/ ATT speed LIN Volume Control RIN Volume Control LOUT1 Volume Control ROUT1 Volume Control LOUT2 Volume Control ROUT2 Volume Control HPL Volume Control OVF/DZF/V Control
D7 PWXTL PWPOB 0 CKSL2 CKSAI2 0 0 0 0 0 0 DEM21
ATTAD7 ATTAD7 ATTDA7 ATTDA7 ATTDA7 ATTDA7
D6 MUTEN PWPOA 0 CKSL1 CKSAI1 XTL1
ACKSAI
D5 PWVR PWDA 0 CKSL0 CKSAI0 XTL0
ACKSAO
0 DAC22 0 0 DEM20
ATTAD6 ATTAD6 ATTDA6 ATTDA6 ATTDA6 ATTDA6
DITD1 DAC21 0 DIFB1 DEM11
ATTAD5 ATTAD5 ATTDA5 ATTDA5 ATTDA5 ATTDA5
D4 PWHP PWAD 0 CLKL1 0 CKSDT ACKSB DITD0 DAC20 0 DIFB0 DEM10
ATTAD4 ATTAD4 ATTDA4 ATTDA4 ATTDA4 ATTDA4
D3 0 0 CLKB1 CLKL0 OLRA1 CKSB2 0
SDTOB1
D2 SMAD 0 CLKB0 MCKO1 OLRA0 CKSB1 DFSAD
SDTOB0
D1 SMDA PWDA2 CLKA1 MCKO0 BCAF CKSB0
DFSDA1 SDTOA1
D0 RSTN1 PWDA1 CLKA0 CLKDT MSA MSB
DFSDA0 SDTOA0
0 0 TDMA1 0
ATTAD3 ATTAD3 ATTDA3 ATTDA3 ATTDA3 ATTDA3
DAC12 AIN2 TDMA0 ATSAD
ATTAD2 ATTAD2 ATTDA2 ATTDA2 ATTDA2 ATTDA2
DAC11 AIN1 DIFA1 0
ATTAD1 ATTAD1 ATTDA1 ATTDA1 ATTDA1 ATTDA1
DAC10 AIN0 DIFA0 ATSDA
ATTAD0 ATTAD0 ATTDA0 ATTDA0 ATTDA0 ATTDA0
0 0
0 0
0 ZCE
OPGA4 VIN
OPGA3 FUNC1
OPGA2 FUNC0
OPGA1 DZFM1
OPGA0 DZFM0
Note: For addresses from14H to 1FH, data must not be written. When PDN pin goes to "L", the registers are initialized to their default values. When RSTN1 bit goes to "0", the internal timing is reset and DZF pin goes to "H", but registers are not initialized to their default values.
MS0427-E-01 - 64 -
2005/11
ASAHI KASEI
[AK4683]
Register Definitions
Addr 00H
Register Name Powerdown 1 Default
D7 PWXTL 1
D6 MUTEN 0
D5 PWVR 1
D4 PWHP 0
D3 0 0
D2 SMAD 0
D1 SMDA 0
D0 RSTN1 1
RSTN1: Internal timing reset 0: Reset. DZF pin go to "H", but registers are not initialized. 1: Normal operation (default) SMAD: ADC Soft Mute Enable 0: Normal operation (default) 1: ADC outputs soft-muted SMDA: DAC Soft Mute Enable 0: Normal operation (default) 1: All DAC outputs soft-muted PWHP: Power management for headphone amplifier 0: Power OFF (default) 1: Power ON PWVR: Power management for reference voltage 0: Power OFF 1: Power ON (default) MUTEN: Bias voltage control for headphone amp 0: bias = 0V (default). 1: Normal operation. Bias = 0.45xHVDD(typ). PWXTL: Power management for X'tal oscillator 0: Power OFF 1: Power ON (default)
MS0427-E-01 - 65 -
2005/11
ASAHI KASEI
[AK4683]
Addr 01H
Register Name Powerdown 2 Default
D7 PWPOB 1
D6 PWPOA 1
D5 PWDA 1
D4 PWAD 1
D3 0 0
D2 0 0
D1 PWDA2 1
D0 PWDA1 1
PWDA1: Power-down control of DAC1 Analog 0: Power-down 1: Normal operation (default) PWDA2: Power-down control of DAC2 Analog 0: Power-down 1: Normal operation (default) PWAD: Power-down control of ADC 0: Power-down 1: Normal operation (default) PWDA: Full-Power-down control of DAC1-2 0: Power-down 1: Normal operation (default) PWPOA: Power-down control of PORTA 0: Power-down 1: Normal operation (default) PWPOB: Power-down control of PORTB 0: Power-down 1: Normal operation (default)
Addr 02H Register Name Clock Select 1 Default D7 0 0 D6 0 0 D5 0 0 D4 0 0 D3 CLKB1 0 D2 CLKB0 1 D1 CLKA1 0 D0 CLKA0 1
CLKA1-0: Clock source control for PORTA 00: DIR 01: X'tal(XTI) (default) 10: MCLK2 11: (Reserved) CLKB1-0: Clock source control for PORTB 00: DIR 01: X'tal(XTI) (default) 10: MCLK2 11: (Reserved)
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ASAHI KASEI
[AK4683]
Addr 03H
Register Name Clock Select 2 Default
D7
CKSL2 0
D6
CKSL1 1
D5
CKSL0 0
D4
CLKL1 0
D3
CLKL0 1
D2
MCKO1 0
D1
MCKO0 1
D0
CLKDT 0
CLKDT: Clock source control for DIT Refer Table 56. MCLKO1-0: Clock source control for MCLKO Refer Table 4. CLKL1-0: Clock source control for Clock Gen C 00: DIR 01: X'tal(XTI) (default) 10: MCLK2 11: (Reserved) CLSL2-0: Clock control for Clock Gen C Refer Table 15 Addr 04H Register Name Clock Select 3 Default D7
CKSAI2 0
D6
CKSAI1 1
D5
CKSAI0 0
D4
SELAO 0
D3
OLRA1 0
D2
OLRA0 0
D1
BCAF 0
D0
MSA 0
MSA: Master/Slave control for input data of PORTA. Refer Table 16. BCAF: Bit clock control for PORTA Refer Table 13. OLRA1-0: Clock control for PORTA OLRCKA. Refer Table 12. SELAO: Clock control for DIR/DIT 0: Except for the case at "1". (default) 1: Selects when the frequency of ILRCKA and OLRCKA are different, DITD[1:0]= "00" or "01" and both SDTOA[1:0] and DITD[1:0] select same data source. CKSAI2-0: Clock control for PORTA Input Data. Refer Table 11. Addr 05H Register Name Clock Select 4 Default D7
0 0
D6
XTL1 0
D5
XTL0 0
D4
CKSDT 0
D3
CKSB2 0
D2
CKSB1 1
D1
CKSB0 0
D0
MSB 0
MSB: Master/Slave control for input data of PORTB. Refer Table 17. CKSB2-0: Clock control for PORTB. Refer Table 14. CKSDT: Clock control for DIT. Refer Table 57. XTL1-0: X'tal Frequency control 00: 11.2896MHz (default) 01: 12.288MHz 10: 24.576MHz 11: (channel status) MS0427-E-01 - 67 2005/11
ASAHI KASEI
[AK4683]
Addr 06H
Register Name Sampling Speed Default
D7
0 0
D6
ACKSAI 0
D5
ACKSAO 0
D4
ACKSB 0
D3
0 0
D2
DFSAD 0
D1
DFSDA1 0
D0
DFSDA0 0
DFSDA1-0: DAC sampling speed control These settings are ignored in Auto Setting Mode. Refer Table 22. DFSAD: ADC sampling speed control This setting is ignored in Auto Setting Mode. Refer Table 21. ACSKB: Auto Setting Mode of PORTB 0: Disable, Manual Setting Mode (default) 1: Enable, Auto Setting Mode Master clock frequency is detected automatically at ACKSB bit "1". In this case, the setting of DFSAD, DFSDA1-0 bits of the block connecting this PORT is ignored. When this bit is "0", DFSAD, DFSDA1-0 bits set the sampling speed mode. ACSKAO: Auto Setting Mode of PORTA Output 0: Disable, Manual Setting Mode (default) 1: Enable, Auto Setting Mode Master clock frequency is detected automatically at ACKSAO bit "1". In this case, the setting of DFSAD, DFSDA1-0 bits of the block connecting this PORT is ignored. When this bit is "0", DFSAD, DFSDA1-0 bits set the sampling speed mode. ACSKAI: Auto Setting Mode of PORTA Input 0: Disable, Manual Setting Mode (default) 1: Enable, Auto Setting Mode Master clock frequency is detected automatically at ACKSAI bit "1". In this case, the setting of DFSAD, DFSDA1-0 bits of the block connecting this PORT is ignored. When this bit is "0", DFSAD, DFSDA1-0 bits set the sampling speed mode.
Addr 07H
Register Name Data Source Select 1 Default
D7
0 0
D6
0 0
D5
DITD1 1
D4
DITD0 1
D3
SDTOB1 0
D2
SDTOB0 1
D1
SDTOA1 0
D0
SDTOA0 1
SDTOA1-0: Data source control for PORTA 00: DIR 01: ADC (default) 10: SDTIB 11: off ("L" output) SDTOB1-0: Data source control for PORTB 00: DIR 01: ADC (default) 10: off ("L" output) 11: SDTIA1 DITD1-0: Data source control for DIT 00: DIR 01: ADC 10: SDTIB 11: SDTIA1 (default)
MS0427-E-01 - 68 -
2005/11
ASAHI KASEI
[AK4683]
Addr 08H
Register Name Data Source Select 2 Default
D7
0 0
D6
DAC22 1
D5
DAC21 0
D4
DAC20 0
D3
0 0
D2
DAC12 0
D1
DAC11 1
D0
DAC10 1
DAC12-10: Data source control for DAC1 000: DIR 001: ADC 010: SDTIB 011: SDTIA1 (default) 100: SDTIA2 101: SDTIA3 DAC22-20: Data source control for DAC2 000: DIR 001: ADC 010: SDTIB 011: SDTIA1 100: SDTIA2 (default) 101: SDTIA3
Addr 09H
Register Name Analog Input Control Default
D7
0 0
D6
0 0
D5
0 0
D4
0 0
D3
0 0
D2
AIN2 0
D1
AIN1 0
D0
AIN0 0
AIN2-0: ADC input selector control 000: LIN1/RIN1 (default) 001: LIN2/RIN2 010: LIN3/RIN3 011: LIN4/RIN4 100: LIN5/RIN5 101: LIN6/RIN6
Addr 0AH
Register Name Audio Data Format Default
D7
0 0
D6
0 0
D5
DIFB1 1
D4
DIFB0 0
D3
TDMA1 0
D2
TDMA0 0
D1
DIFA1 1
D0
DIFA0 0
DIFA1-0, TDMA1-0: Audio format control for PORTA Refer Table 31, Table 32, Table 33. DIFB1-0: Audio format control for PORTB Refer Table 34. Addr 0BH Register Name
De-emphasis/ ATT speed
D7
DEM21 0
D6
DEM20 1
D5
DEM11 0
D4
DEM10 1
D3
0 0
D2
ATSAD 0
D1
0 0
D0
ATSDA 0
Default
ATSDA: DAC digital Attenuator transition time control ATSAD: ADC digital Attenuator transition time control Refer Table 37, Table 38. DEM11-10: DAC1 De-emphasis filter control DEM21-20: DAC2 De-emphasis filter control Refer Table 30.
MS0427-E-01 - 69 -
2005/11
ASAHI KASEI
[AK4683]
Addr 0CH 0DH
Register Name LIN Volume Control RIN Volume Control Default
D7
ATTAD7 ATTAD7
D6
ATTAD6 ATTAD6
D5
ATTAD5 ATTAD5
D4
ATTAD4 ATTAD4
D3
ATTAD3 ATTAD3
D2
ATTAD2 ATTAD2
D1
ATTAD1 ATTAD1
D0
ATTAD0 ATTAD0
0
0
1
1
0
0
0
0
ATTAD7-0: ADC Attenuation level control Refer Table 35. Addr 0EH 0FH 10H 11H Register Name
LOUT1 Volume Control ROUT1 Volume Control LOUT2 Volume Control ROUT2 Volume Control
D7
ATTDA7 ATTDA7 ATTDA7 ATTDA7
D6
ATTDA6 ATTDA6 ATTDA6 ATTDA6
D5
ATTDA5 ATTDA5 ATTDA5 ATTDA5
D4
ATTDA4 ATTDA4 ATTDA4 ATTDA4
D3
ATTDA3 ATTDA3 ATTDA3 ATTDA3
D2
ATTDA2 ATTDA2 ATTDA2 ATTDA2
D1
ATTDA1 ATTDA1 ATTDA1 ATTDA1
D0
ATTDA0 ATTDA0 ATTDA0 ATTDA0
Default
0
0
0
1
1
0
0
0
ATTDA7-0: DAC Attenuation level control Refer Table 36. Addr 12H Register Name HP Volume Control Default D7
0 0
D6
0 0
D5 0
0
D4
OPGA4 0
D3
OPGA3 0
D2
OPGA2 0
D1
OPGA1 0
D0
OPGA0 0
OPGA5-0: HP OPGA Attenuation level control Refer Table 42. Addr 13H Register Name OVF/DZF/V Control Default D7
0 0
D6
0 0
D5
ZCE 1
D4
VIN 0
D3
FUNC1 0
D2
FUNC0 0
D1
DZFM1 0
D0
DZFM0 0
DZFM1-0: DZF mode setting Refer Table 7. FUNC1-0: OVF/DZF/V mode control 00: off ("L" output. default) 01: ADC Overflow detection 10: DAC Zero data detection 11: V output VIN: DIT V bit control 0: V bit ="0" (default) 1: V bit ="1" ZCE: OPGA Zero-cross enable 0: Disable 1: Enable (default)
MS0427-E-01 - 70 -
2005/11
ASAHI KASEI
[AK4683]
Register Map (DIR/DIT part)
Addr 00H 01H 02H 03H 04H 05H 06H 07H 08H 09H 0AH 0BH 0CH 0DH 0EH 0FH 10H 11H 12H 13H 14H 15H 16H 17H 18H 19H 1AH 1BH 1CH 1DH 1EH Register Name
CLK & Power Down Control
D7 CS12 0 TXE EFH1 1 QINT FS3 CR7 CR15 CR23 CR31 CR39 CT7 CT15 CT23 CT31 CT39 PC7 PC15 PD7 PD15 Q9 Q17 Q25 Q33 Q41 Q49 Q57 Q65 Q73
D6 1 1 0 EFH0 0 AUTO FS2 CR6 CR14 CR22 CR30 CR38 CT6 CT14 CT22 CT30 CT39 PC6 PC14 PD6 PD14 Q8 Q16 Q24 Q32 Q40 Q48 Q56 Q64 Q72
D5 CM1 1 OPS1 0 MCIT0 1 CINT FS1 CR5 CR13 CR21 CR29 CR37 CT5 CT13 CT21 CT29 CT39 PC5 PC13 PD5 PD13 Q7 Q15 Q23 Q31 Q39 Q47 Q55 Q63 Q71
D4 CM0 0 OPS0 0 1 FS0 CR4 CR12 CR20 CR28 CR36 CT4 CT12 CT20 CT28 CT39 PC4 PC12 PD4 PD12 Q6 Q14 Q22 Q30 Q38 Q46 Q54 Q62 Q70
D3 OCKS1 DEAU 0 DIT 0 0 CR3 CR11 CR19 CR27 CR35 CT3 CT11 CT19 CT27 CT39 PC3 PC11 PD3 PD11 Q5 Q13 Q21 Q29 Q37 Q45 Q53 Q61 Q69
D2 OCKS0 DEM1 0 0 MPE0 1 PEM V CR2 CR10 CR18 CR26 CR34 CT2 CT10 CT18 CT26 CT39 PC2 PC10 PD2 PD10 Q4 Q12 Q20 Q28 Q36 Q44 Q52 Q60 Q68
D1 PWN DEM0 0 IPS1 MAUD0 0 AUDION QCRC CR1 CR9 CR17 CR25 CR33 CT1 CT9 CT17 CT25 CT39 PC1 PC9 PD1 PD9 Q3 Q11 Q19 Q27 Q35 Q43 Q51 Q59 Q67
D0 RSTN2 DFS 0 IPS0 MPAR0 1 PAR CCRC CR0 CR8 CR16 CR24 CR32 CT0 CT8 CT16 CT24 CT32 PC0 PC8 PD0 PD8 Q2 Q10 Q18 Q26 Q34 Q42 Q50 Q58 Q66 Q74
Format & De-em Control Input/ Output Control 0 Input/ Output Control 1 INT MASK TEST Receiver status 0 Receiver status 1 RX Channel Status Byte 0 RX Channel Status Byte 1 RX Channel Status Byte 2 RX Channel Status Byte 3 RX Channel Status Byte 4 TX Channel Status Byte 0 TX Channel Status Byte 1 TX Channel Status Byte 2 TX Channel Status Byte 3 TX Channel Status Byte 4 Burst Preamble Pc Byte 0 Burst Preamble Pc Byte 1 Burst Preamble Pd Byte 0 Burst Preamble Pd Byte 1 Q-subcode Address / Control Q-subcode Track Q-subcode Index Q-subcode Minute Q-subcode Second Q-subcode Frame Q-subcode Zero Q-subcode ABS Minute Q-subcode ABS Second
MQIT0 MAUT0
MULK0 MDTS0 UNLCK DTSCD
1FH Q-subcode ABS Frame Q81 Q80 Q79 Q78 Q77 Q76 Q75 When PDN pin goes "L", the registers are initialized to their default values. When RSTN bit goes "0", the internal timing is reset and the registers are initialized to their default values. All data can be written to the register even if PWN bit is "0". The "0" register should be written "0", the "1" register should be written "1" data.
MS0427-E-01 - 71 -
2005/11
ASAHI KASEI
[AK4683]
Register Definitions
Reset & Initialize Addr Register Name 00H CLK & Power Down Control R/W Default D7 CS12 R/W 0 D6 1 R/W 1 D5 CM1 R/W 0 D4 CM0 R/W 0 D3 D2 OCKS1 OCKS0 R/W R/W 0 0 D1 PWN R/W 1 D0 RSTN2 R/W 1
RSTN2: Timing Reset & Register Initialize 0: Reset & Initialize 1: Normal Operation (default) PWN: Power Down 0: Power Down 1: Normal Operation (default) OCKS1-0: Master Clock Frequency Select Refer Table 3, Table 57. CM1-0: Master Clock Operation Mode Select Refer Table 1, Table 45, Table 55. CS12: Channel Status Select 0: Channel 1 (default) 1: Channel 2 Selects which channel status is used to derive C-bit buffers, AUDION, PEM, FS3, FS2, FS1, FS0, Pc and Pd. The de-emphasis filter is controlled by channel 1 in the Parallel Mode.
Format & De-emphasis Control Addr Register Name 01H Format & De-em Control R/W Default DFS: 96kHz De-emphasis Control Refer Table 52. DEM1-0: 32, 44.1, 48kHz De-emphasis Control Refer Table 52. DEAU: De-emphasis Auto Detect Enable 0: Disable 1: Enable (default) D7 0 R/W 0 D6 1 R/W 1 D5 1 R/W 1 D4 0 R/W 0 D3 DEAU R/W 1 D2 DEM1 R/W 0 D1 DEM0 R/W 1 D0 DFS R/W 0
MS0427-E-01 - 72 -
2005/11
ASAHI KASEI
[AK4683]
Input/Output Control Addr Register Name 02H Input/ Output Control 0 R/W Default D7 TXE R/W 1 D6 0 R/W 0 D5 OPS1 R/W 0 D4 OPS0 R/W 0 D3 0 R/W 0 D2 0 R/W 0 D1 0 R/W 0 D0 0 R/W 0
OPS1-0: Output Through Data Select for TX pin Refer Table 54. TXE: TX Output Enable 0: Disable. TX0 pin outputs "L". 1: Enable (default) Addr Register Name 03H Input/ Output Control 1 R/W Default D7 EFH1 R/W 0 D6 EFH0 R/W 1 D5 0 R/W 0 D4 0 R/W 0 D3 DIT R/W 1 D2 0 R/W 0 D1 IPS1 R/W 0 D0 IPS0 R/W 0
IPS1-0: Input Recovery Data Select Refer Table 53. DIT: Through data/Transmit data select for TX1 pin 0: Through data (RX data). 1: Transmit data (DAUX2 data. default.). (U bit for DIT is fixed to "0") EFH1-0: Interrupt 0 Pin Hold Count Select 00: 512 LRCK2 01: 1024 LRCK (default) 10: 2048 LRCK 11: 4096 LRCK
MS0427-E-01 - 73 -
2005/11
ASAHI KASEI
[AK4683]
Mask Control for INT Addr Register Name 04H INT MASK R/W Default MPR0: MAN0: MPE0: MDTS0: MUL0: MCI0: MAT0: MQI0: D7 MQI0 R/W 1 D6 MAT0 R/W 1 D5 MCI0 R/W 1 D4 MUL0 R/W 0 D3 MDTS0 R/W 1 D2 MPE0 R/W 1 D1 MAN0 R/W 1 D0 MPR0 R/W 0
Mask Enable for PAR bit Mask Enable for AUDN bit Mask Enable for PEM bit Mask Enable for DTSCD bit Mask Enable for UNLOCK bit Mask Enable for CINT bit Mask Enable for AUTO bit Mask Enable for QINT bit 0: Mask disable 1: Mask enable
MS0427-E-01 - 74 -
2005/11
ASAHI KASEI
[AK4683]
Receiver Status 0 Addr Register Name 06H Receiver status 0 R/W Default D7 QINT RD 0 D6 AUTO RD 0 D5 CINT RD 0 D4 D3 UNLCK DTSCD RD RD 0 0 D2 PEM RD 0 D1 AUDION RD 0 D0 PAR RD 0
PAR: Parity Error or Biphase Error Status 0: No Error 1: Error It is "1" if Parity Error or Biphase Error is detected in the sub-frame. AUDION: Audio Bit Output 0: Audio 1: Non Audio This bit is made by encoding channel status bits. PEM: Pre-emphasis Detect. 0: OFF 1: ON This bit is made by encoding channel status bits. DTSCD: DTS-CD Auto Detect 0: No detect 1: Detect UNLCK: PLL Lock Status 0: Locked 1: Out of Lock CINT: Channel Status Buffer Interrupt 0: No change 1: Changed AUTO: Non-PCM Auto Detect 0: No detect 1: Detect QINT: Q-subcode Buffer Interrupt 0: No change 1: Changed QINT, CINT and PAR bits are initialized when 06H is read. Receiver Status 1 Addr Register Name 07H Receiver status 1 R/W Default D7 FS3 RD 0 D6 FS2 RD 0 D5 FS1 RD 0 D4 FS0 RD 1 D3 0 RD 0 D2 V RD 0 D1 QCRC RD 0 D0 CCRC RD 0
CCRC: Cyclic Redundancy Check for Channel Status 0:No Error 1:Error QCRC: Cyclic Redundancy Check for Q-subcode 0:No Error 1:Error V: Validity of channel status 0:Valid 1:Invalid FS3-0: Sampling Frequency detection (refer Table 48.)
MS0427-E-01 - 75 -
2005/11
ASAHI KASEI
[AK4683]
Receiver Channel Status Addr 08H 09H 0AH 0BH 0CH Register Name RX Channel Status Byte 0 RX Channel Status Byte 1 RX Channel Status Byte 2 RX Channel Status Byte 3 RX Channel Status Byte 4 R/W Default D7 CR7 CR15 CR23 CR31 CR39 D6 CR6 CR14 CR22 CR30 CR38 D5 CR5 CR13 CR21 CR29 CR37 D4 CR4 CR12 CR20 CR28 CR36 D3 CR3 CR11 CR19 CR27 CR35 D2 CR2 CR10 CR18 CR26 CR34 D1 CR1 CR9 CR17 CR25 CR33 D0 CR0 CR8 CR16 CR24 CR32
RD Not initialized
CR39-0: Receiver Channel Status Byte 4-0
Transmitter Channel Status Addr 0DH 0EH 0FH 10H 11H Register Name TX Channel Status Byte 0 TX Channel Status Byte 1 TX Channel Status Byte 2 TX Channel Status Byte 3 TX Channel Status Byte 3 R/W Default D7 CT7 CT15 CT23 CT31 CT39 D6 CT6 CT14 CT22 CT30 CT38 D5 CT5 CT13 CT21 CT29 CT37 D4 D3 CT4 CT3 CT12 CT11 CT20 CT19 CT28 CT27 CT36 CT35 R/W 0 D2 CT2 CT10 CT18 CT26 CT34 D1 CT1 CT9 CT17 CT25 CT335 D0 CT0 CT8 CT16 CT24 CT32
CT39-0: Transmitter Channel Status Byte 4-0
Burst Preamble Pc/Pd in non-PCM encoded Audio Bitstreams
Addr 12H 13H 14H 15H Register Name Burst Preamble Pc Byte 0 Burst Preamble Pc Byte 1 Burst Preamble Pd Byte 0 Burst Preamble Pd Byte 1 R/W Default D7 PC7 PC15 PD7 PD15 D6 PC6 PC14 PD6 PD14 D5 PC5 PC13 PD5 PD13 D4 PC4 PC12 PD4 PD12 D3 PC3 PC11 PD3 PD11 D2 PC2 PC10 PD2 PD10 D1 PC1 PC9 PD1 PD9 D0 PC0 PC8 PD0 PD8
RD Not initialized
PC15-0: Burst Preamble Pc Byte 0 and 1 PD15-0: Burst Preamble Pd Byte 0 and 1
MS0427-E-01 - 76 -
2005/11
ASAHI KASEI
[AK4683]
Q-subcode Buffer
Addr 16H 17H 18H 19H 1AH 1BH 1CH 1DH 1EH 1FH
Register Name Q-subcode Address / Control Q-subcode Track Q-subcode Index Q-subcode Minute Q-subcode Second Q-subcode Frame Q-subcode Zero Q-subcode ABS Minute Q-subcode ABS Second Q-subcode ABS Frame R/W Default
D7 Q9 Q17 Q25 Q33 Q41 Q49 Q57 Q65 Q73 Q81
D6 Q8 Q16 Q24 Q32 Q40 Q48 Q56 Q64 Q72 Q80
D5 Q7 Q15 Q23 Q31 Q39 Q47 Q55 Q63 Q71 Q79
D4 Q6 Q14 Q22 Q30 Q38 Q46 Q54 Q62 Q70 Q78
D3 Q5 Q13 Q21 Q29 Q37 Q45 Q53 Q61 Q69 Q77
D2 Q4 Q12 Q20 Q28 Q36 Q44 Q52 Q60 Q68 Q76
D1 Q3 Q11 Q19 Q27 Q35 Q43 Q51 Q59 Q67 Q75
D0 Q2 Q10 Q18 Q26 Q34 Q42 Q50 Q58 Q66 Q74
RD Not initialized
MS0427-E-01 - 77 -
2005/11
ASAHI KASEI
[AK4683]
SYSTEM DESIGN
Figure 50 shows the system connection diagram. An evaluation board is available which demonstrates application circuits, the optimum layout, power supply arrangements and measurement results.
5
Analog in
+ 10u 12k 0.1u R 64 PVSS 63 RIN6 62 LIN6 61 RIN5 60 LIN5 59 RIN4 58 LIN4 57 RIN3 56 LIN3 55 RIN2 54 LIN2 53 RIN1 52 LIN1 51
+
10u 0.1u
AVDD1 50
1 PVDD 2 RX0
AVSS1 49 RISEL 48 ROPIN 47 LOPIN 46 LISEL 45 AVSS2 44 AVDD2 43 VCOM 42 0.1u 10u + 0.1u + 2.2u MUTE MUTE MUTE MUTE 1u 6.8 6.8 0.1u 10u + 47u 47u
S/PDIF sources
3 I2C 4 RX1 5 RX2 6 RX3 7 INT 8 DZF 9 CDTO/TEST 10 LRCKB
Analog 5V
AK4683
ROUT2 41 LOUT2 40 ROUT2 39 LOUT2 38 MUTET 37 HPL 36 HPR 35 28 CSN/TEST HVSS 34 31 SDTIA3 29 SDTIA 30 SDTIA 32 SDTIB HVDD 33
Analog out
Audio DSP2
11 BICKB 12 SDTOB 13 OLRCKA 14 ILRCKA 15 BICKA 17 MCKO 18 TVDD 24 MCLK2 16 SDTOA 20 DVDD 19 DVSS
Headphone
Analog 5V
25 PDN
26 SDA
22 XTO
10u
+
+
10u
X'tal 0.1u C C
3.3V to 5V Digital Audio DSP1 5V Digital
0.1u
Micro Controller
S/PDIF out Digital Ground Analog Ground
Figure 50. Typical Connection Diagram( I2C serial control mode) Notes: - "C" depends on the crystal. - AVSS, DVSS and PVSS must be connected the same analog ground plane. - Digital signals, especially clocks, should be kept away from the R pin in order to avoid an effect to the clock jitter performance. - In case of coaxial input, ground of RCA connector and terminator should be connected to PVSS of the AK4683 with low impedance on PC board.
MS0427-E-01 - 78 -
27 SCL
21 XTI
23 TX
2005/11
ASAHI KASEI
[AK4683]
1. Grounding and Power Supply Decoupling The AK4683 requires careful attention to power supply and grounding arrangements. AVDD1, AVDD2, DVDD, PVDD and HVDD are usually supplied from analog supply in system. If AVDD1, AVDD2, DVDD, PVDD and HVDD are supplied separately, the power up sequence is not critical. AVSS1, AVSS2, DVSS PVSS and HVSS of the AK4683 must be connected to analog ground plane. System analog ground and digital ground should be connected together near to where the supplies are brought onto the printed circuit board. Decoupling capacitors should be as near to the AK4683 as possible, with the small value ceramic capacitor being the nearest. 2. Voltage Reference Inputs The voltage of AVDD1, AVDD2 sets the analog input/output range. VCOM is a signal ground of this chip. An electrolytic capacitor 2.2F parallel with a 0.1F ceramic capacitor attached between VCOM pin and AVSS1 pin eliminates the effects of high frequency noise. No load current may be drawn from VCOM pin. All signals, especially clocks, should be kept away from the AVDD1, AVDD2 and VCOM pins in order to avoid unwanted coupling into the AK4683. 3. Analog Inputs The AK4683 receives the analog input through the single-ended Pre-amp using external resistors. Adjust the input level/gain at Pre-amp to match the input range 1.22 x AVDD1 Vpp (typ. fs=48kHz, Ri =47kohm, Rf = 24kohm). Each input pins are biased internally. The ADC output data format is 2's complement. The internal digital HPF removes the DC offset. The AK4683 samples the analog inputs at 64fs. The digital filter rejects noise above the stop band except for multiples of 64fs. The AK4683 includes an anti-aliasing filter (RC filter) to attenuate a noise around 64fs. 4. Analog Outputs The analog outputs are also single-ended and centered around the VCOM voltage. The input signal range scales with the supply voltage and nominally 0.6 x AVDD2 Vpp. The DAC input data format is 2's complement. The output voltage is a positive full scale for 7FFFFFH(@24bit) and a negative full scale for 800000H(@24bit). The ideal output is VCOM voltage for 000000H(@24bit). The internal analog filters remove most of the noise generated by the delta-sigma modulator of DAC beyond the audio passband. DC offsets on analog outputs are eliminated by AC coupling since DAC outputs have DC offsets of a few mV. 5. Attention to the PCB Wiring LIN1-6 and RIN1-6 pins are the summing nodes of the Pre-Amp. Attention should be given to avoid coupling with other signals on those nodes. This can be accomplished by making the wire length of the input resistors as short as possible. The same theory also applies to the LOPIN/ROPIN pins and feedback resistors; keep the wire length to a minimum. Unused input pins among LIN1-6 and RIN1-6 pins should be left open.
MS0427-E-01 - 79 -
2005/11
ASAHI KASEI
[AK4683]
PACKAGE
64pin LQFP(Unit:mm)
12.00.3 1.70max 0.100.10
10.0
48 49 33 32
1.40
64 1 16
17
12.0 0.3
0.5
0.170.05 0.10 M 1.0
0.210.05
0 ~10
0.450.2 0.10
Package & Lead frame material
Package molding compound: Lead frame material: Lead frame surface treatment: Epoxy Cu Solder (Pb free) plate
MS0427-E-01 - 80 -
2005/11
ASAHI KASEI
[AK4683]
MARKING
AKM AK4683EQ XXXXXXX
1
1) 2) 3) 4) Pin #1 indication Asahi Kasei Logo Marking Code: AK4683EQ Date Code: XXXXXXX(7 digits)
Revision History
Date (YY/MM/DD) 05/09/30 05/11/15 Revision 00 01 Reason First Edition Error Correction Page 30 38 67 Contents Table 28, 29: "off" -> "SDTIB" "(Table 16)" -> "(Table 37, Table 38)" CLKDT: "Table 58" -> "Table 56" SELAO: "DIT[1:0]" -> "DITD[1:0]"
MS0427-E-01 - 81 -
2005/11
ASAHI KASEI
[AK4683]
IMPORTANT NOTICE * These products and their specifications are subject to change without notice. Before considering any use or application, consult the Asahi Kasei Microsystems Co., Ltd. (AKM) sales office or authorized distributor concerning their current status. * AKM assumes no liability for infringement of any patent, intellectual property, or other right in the application or use of any information contained herein. * Any export of these products, or devices or systems containing them, may require an export license or other official approval under the law and regulations of the country of export pertaining to customs and tariffs, currency exchange, or strategic materials. * AKM products are neither intended nor authorized for use as critical components in any safety, life support, or other hazard related device or system, and AKM assumes no responsibility relating to any such use, except with the express written consent of the Representative Director of AKM. As used here: (a) A hazard related device or system is one designed or intended for life support or maintenance of safety or for applications in medicine, aerospace, nuclear energy, or other fields, in which its failure to function or perform may reasonably be expected to result in loss of life or in significant injury or damage to person or property. (b) A critical component is one whose failure to function or perform may reasonably be expected to result, whether directly or indirectly, in the loss of the safety or effectiveness of the device or system containing it, and which must therefore meet very high standards of performance and reliability. * It is the responsibility of the buyer or distributor of an AKM product who distributes, disposes of, or otherwise places the product with a third party to notify that party in advance of the above content and conditions, and the buyer or distributor agrees to assume any and all responsibility and liability for and hold AKM harmless from any and all claims arising from the use of said product in the absence of such notification.
MS0427-E-01 - 82 -
2005/11


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