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 NCP2809 Series NOCAPt 135 mW Stereo Headphone Power Amplifier
The NCP2809 is a cost-effective stereo audio power amplifier capable of delivering 135 mW of continuous average power per channel into 16 W loads. The NCP2809 audio power amplifier is specifically designed to provide high quality output power from low supply voltage, requiring very few external components. Since NCP2809 does not require bootstrap capacitors or snubber networks, it is optimally suited for low-power portable systems. NCP2809A has an internal gain of 0 dB while specific external gain can externally be set with NCP2809B. If the application allows it, the virtual ground provided by the device can be connected to the middle point of the headset (Figure 1). In such case, the two external heavy coupling capacitors typically used can be removed. Otherwise, you can also use both outputs in single ended mode with external coupling capacitors (Figure 43). Due to its excellent Power Supply Rejection Ratio (PSRR), it can be directly connected to the battery, saving the use of an LDO.
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MARKING DIAGRAM
10 1
Micro10 DM SUFFIX CASE 846B
MAx AYW
* * * * * * * * * * * * *
X = E for NCP2809A X = C for NCP2809B A = Assembly Location Y = Year W = Work Week
Pb-Free Package is Available 135 mW to a 16 W Load from a 5.0 V Power Supply Excellent PSRR (85 dB Typical): Direct Connection to the Battery "Pop and Click" Noise Protection Circuit Ultra Low Current Shutdown Mode 2.2 V-5.5 V Operation Outstanding Total Harmonics Distortion + Noise (THD+N): Less than 0.01% External Turn-on and Turn-off Configuration Capability Thermal Overload Protection Circuitry
PIN CONNECTIONS
IN_R SD BYP REF_I IN_L 1 2 3 4 5 10 9 8 7 6 OUT_R VM OUT_I VP OUT_L
Typical Applications
Cellular Phone Portable Stereo MP3 Player Personal and Notebook Computers
ORDERING INFORMATION
See detailed ordering and shipping information in the package dimensions section on page 20 of this data sheet.
(c) Semiconductor Components Industries, LLC, 2004
1
November, 2004 - Rev. 7
Publication Order Number: NCP2809/D
NCP2809 Series
VP 1 mF CS VP AUDIO INPUT CI 390 nF BYPASS Cbypass AUDIO INPUT 1 mF CI 390 nF VIH VIL SHUTDOWN VM IN_R 20 kW 20 kW SHUTDOWN CONTROL + - IN_L VP 20 kW BYPASS VMC BRIDGE
20 kW - + + - OUT_L HEADPHONE JACK LEFT OUT_I SLEEVE REF_I RIGHT OUT_R
Figure 1. NCP2809A Typical Application Schematic without Output Coupling Capacitor (NOCAP Configuration)
VP 1 mF CS VP AUDIO INPUT CI 390 nF IN_L 20 kW VP BYPASS 1 mF CI 390 nF BYPASS VMC BRIDGE 20 kW - + + - OUT_L 220 mF + Cout OUT_I REF_I NC NC 220 mF + Cout SLEEVE RIGHT
HEADPHONE JACK LEFT
AUDIO INPUT
IN_R 20 kW
+ - 20 kW
OUT_R
VIH VIL
SHUTDOWN VM
SHUTDOWN CONTROL
Figure 2. NCP2809A Typical Application Schematic with Output Coupling Capacitor
TIP (LEFT)
RING SLEEVE (RIGHT) Figure 3. Typical 3-Wire Headphone Plug http://onsemi.com
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NCP2809 Series
20 kW VP 1 mF CI 390 nF BYPASS Cbypass 1 mF + - CS VP VP - + + - OUT_L HEADPHONE JACK LEFT VMC BRIDGE OUT_I SLEEVE REF_I RIGHT AUDIO INPUT CI 390 nF SHUTDOWN VM VIH VIL 20 kW SHUTDOWN CONTROL 20 kW IN_R OUT_R
AUDIO INPUT
20 kW
IN_L
BYPASS
Figure 4. NCP2809B Typical Application Schematic without Output Coupling Capacitor (NOCAP Configuration)
20 kW VP 1 mF CS VP AUDIO INPUT CI 390 nF BYPASS Cbypass 1 mF 20 kW IN_L VP BYPASS VMC BRIDGE - + + - OUT_L 220 mF + Cout OUT_I REF_I NC NC 220 mF + Cout SLEEVE RIGHT HEADPHONE JACK LEFT
AUDIO INPUT
CI 390 nF
20 kW
IN_R
+ -
OUT_R
SHUTDOWN VIH VIL VM
SHUTDOWN CONTROL
20 kW
Figure 5. NCP2809B Typical Application Schematic with Output Coupling Capacitor
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NCP2809 Series
PIN FUNCTION DESCRIPTION
Pin 1 2 3 4 Type I I I O Symbol IN_R SHUTDOWN BYPASS REF_I Description Negative input of the second amplifier. It receives the audio input signal. Connected to the input capicator Cin (NCP2809A) or the external Rin (NCP2809B). The device enters in shutdown mode when a a low level is applied on this pin. Bypass capacitor pin which provides the common mode voltage (VP/2). Virtual ground amplifier feed back. This pin sets the stereo headset ground. In order to improve crosstalk, this pin must be connected as close as possible to the ground connection of the headset (ideally at the ground pin of the headset connector). When one uses bypassing capacitors, this pin must be left unconnected. Negative input of the first amplifier. It receives the audio input signal. Connected to the input capacitor Cin (NCP2809A) or the external Rin (NCP2809B). Stereo headset amplifier analog output left. This pin will output the amplified analog signal and, depending on the application, must be coupled with a capacitor or directly connected to the left loudspeaker of the headset. This output is able to drive a 16 W load in a single-ended configuration. Positive analog supply of the cell. Range: 2.2 V - 5.5 V Virtual ground for stereo Headset common connection. This pin is directly connected to the common connection of the headset when use of bypassing capacitor is not required. When one uses bypassing capacitors, this pin must be left unconnected. Analog Ground Stereo headset amplifier analog output right. This pin will output the amplified analog signal and, depending on the application, must be coupled with a capacitor or directly connected to the right loudspeaker of the headset. This output is able to drive a 16 W load in a single-ended configuration.
5 6
I O
IN_L OUT_L
7 8
I O
VP OUT_I
9 10
I O
VM OUT_R
MAXIMUM RATINGS (TA = +25C)
Rating Supply Voltage Operating Supply Voltage Input Voltage Max Output Current Power Dissipation Operating Ambient Temperature Max Junction Temperature Storage Temperature Range Thermal Resistance, Junction-to-Air ESD Protection Latch up current at Ta = 85_C (Note 3) Micro10 Human Body Model (HBM) (Note 1) Machine Model (MM) (Note 2) Symbol Vp Op Vp Vin Iout Pd TA TJ Tstg RqJA - Value 6.0 2.2 to 5.5 -0.3 to VCC + 0.3 250 Internally Limited -40 to +85 150 -65 to +150 200 8000 200 100 Unit V V V mA - C C C C/W V mA
Maximum ratings applied to the device are individual stress limit values (not normal operating conditions) and are not valid simultaneously. If stress limits are exceeded device functional operation is not implied, damage may occur and reliability may be affected. Functional operation should be restricted to the Recommended Operating Conditions. 1. Human Body Model, 100 pF discharged through a 1.5 kW resistor following specification JESD22/A114 8.0 kV can be applied on OUT_L, OUT_R, REF_I and OUT_I outputs. For other pins, 2.0 kV is the specified voltage. 2. Machine Model, 200 pF discharged through all pins following specification JESD22/A115. 3. Maximum ratings per JEDEC standard JESD78. *This device contains 752 active transistors and 1740 MOS gates.
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NCP2809 Series
ELECTRICAL CHARACTERISTICS All the parameters are given in the capless configuration (typical application). The following parameters are given for the NCP2809A and NCP2809B mounted externally with 0 dB gain, unless otherwise noted. (For typical values TA = 25C, for min and max values TA = -40C to 85C, TJmax = 125C, unless otherwise noted.)
Characteristic Supply Quiescent Current Symbol IDD Conditions Vin = 0 V, RL = 16 W Vp = 2.4 V Vp = 5.0 V Vp = 2.4 V Vp = 5.0 V Vp = 5.0 V - - Cby = 1.0 mF Cby = 1.0 mF and Vp = 5.0 V Vp = 2.4 V, RL = 16 W Vp = 5.0 V, RL = 16 W Vp = 2.4 V, RL = 32 W Vp = 5.0 V, RL = 32 W Max Rms Output Power POrms Vp = 2.4 V, RL = 16 W, THD+N<0.1% Vp = 5.0 V, RL = 16 W, THD+N<0.1% Vp = 2.4 V, RL = 32 W, THD+N<0.1% Vp = 5.0 V, RL = 32 W, THD+N<0.1% Voltage Gain Crosstalk G CS NCP2809A only f = 1.0 kHz Vp = 2.4 V, RL = 16 W, Pout = 20 mW Vp = 2.4 V, RL = 32 W, Pout = 10 mW Vp = 3.0 V, RL = 16 W, Pout = 30 mW Vp = 3.0 V, RL = 32 W, Pout = 20 mW Vp = 5.0 V, RL = 16 W, Pout = 75 mW Vp = 5.0 V, RL = 32 W, Pout = 50 mW Signal to Noise Ratio SNR f = 1.0 kHz Vp = 2.4 V, RL = 16 W, Pout = 20 mW Vp = 2.4 V, RL = 32 W, Pout = 10 mW Vp = 3.0 V, RL = 16 W, Pout = 30 mW Vp = 3.0 V, RL = 32 W, Pout = 20 mW Vp = 5.0 V, RL = 16 W, Pout = 75 mW Vp = 5.0 V, RL = 32 W, Pout = 50 mW 4. Min/Max limits are guaranteed by production test. 5. At TA = -40C, the minimum value is set to 1.5 V. 6. See page 10 for a theoretical approach to these parameters. -0.5 0.82 1.94 285 385 0.9 2.05 1.04 2.26 24 131 17 80 0 -63.5 -72.5 -64 -73 -64 -73 dB 88.3 89 90.5 92 95.1 96.1 +0.5 dB dB mW 1.2 0.4 -25 Min (Note 4) Typ 1.54 1.84 1.0 10 Max (Note 4) 2.8 3.6 +25 600 mV nA V V ms ms V Unit mA
Output Offset Voltage Shutdown Current Shutdown Voltage High (Note 5) Shutdown Voltage Low Turning On Time (Note 6) Turning Off Time (Note 6) Max Output Swing
Voff ISD VSDIH VSDIL TWU TSD Vloadpeak
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NCP2809 Series
ELECTRICAL CHARACTERISTICS All the parameters are given in the capless configuration (typical application). The following parameters are given for the NCP2809A and NCP2809B mounted externally with 0 dB gain, unless otherwise noted. (For typical values TA = 25C, for min and max values TA = -40C to 85C, TJmax = 125C, unless otherwise noted.)
Characteristic Positive Supply Rejection Ratio Symbol PSRR V+ Conditions RL = 16 W Vpripple_pp = 200 mV Cby = 1.0 mF Input Terminated with 10 W NCP2809A F = 217 Hz Vp = 5.0 V Vp = 2.4 V F = 1.0 kHz Vp = 5.0 V Vp = 2.4 V Positive Supply Rejection Ratio PSRR V+ RL = 16 W Vpripple_pp = 200 mV Cby = 1.0 mF Input Terminated with 10 W NCP2809B with 0 dB External Gain F = 217 Hz Vp = 5.0 V Vp = 2.4 V F = 1.0 kHz Vp = 5.0 V Vp = 2.4 V Efficiency Thermal Shutdown Temperature (Note 8) Total Harmonic Distortion + Noise (Note 9) h Tsd THD+N VP = 5.0 V, RL = 16 W = 135 mW - VP = 2.4 V, f = 1.0 kHz RL = 16 W, Pout = 20 mW RL = 32 W, Pout = 15 mW VP = 5.0 V, f = 1.0 kHz RL = 16 W, Pout = 120 mW RL = 32 W, Pout = 70 mW Min (Note 7) Typ Max (Note 7) Unit dB
-73 -82
-73 -85 dB
-80 -82
-81 -81 63 160 % C % 0.006 0.004
0.005 0.003
7. Min/Max limits are guaranteed by production test. 8. This thermal shutdown is made with an hysteresis function. Typically, the device turns off at 160C and turns on again when the junction temperature is less than 140C. 9. The outputs of the device are sensitive to a coupling capacitor to Ground. To ensure THD+N at very low level for any sort of headset (16 W or 32 W), outputs (OUT_R, OUT_L, OUT_I and REF_I) must not be grounded with more than 500 pF.
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NCP2809 Series
TYPICAL CHARACTERISTICS
10 10
1 THD+N (%) THD+N (%) 100 1000 10000 FREQUENCY (Hz) 100000
1
0.1
0.1
0.01
0.01
0.001 10
0.001 10
100
1000 10000 FREQUENCY (Hz)
100000
Figure 6. THD+N vs. Frequency Vp = 5.0 V, RL = 16 W, Pout = 75 mW
10 10
Figure 7. THD+N vs. Frequency Vp = 5.0 V, RL = 32 W, Pout = 50 mW
1 THD+N (%) THD+N (%) 100 1000 10000 FREQUENCY (Hz) 100000
1
0.1
0.1
0.01
0.01
0.001 10
0.001 10
100
1000 10000 FREQUENCY (Hz)
100000
Figure 8. THD+N vs. Frequency Vp = 3.0 V, RL = 16 W, Pout = 30 mW
10 10
Figure 9. THD+N vs. Frequency Vp = 3.0 V, RL = 32 W, Pout = 20 mW
1 THD+N (%) THD+N (%) 100 1000 10000 FREQUENCY (Hz) 100000
1
0.1
0.1
0.01
0.01
0.001 10
0.001 10
100
1000 10000 FREQUENCY (Hz)
100000
Figure 10. THD+N vs. Frequency Vp = 2.4 V, RL = 16 W, Pout = 20 mW http://onsemi.com
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Figure 11. THD+N vs. Frequency Vp = 2.4 V, RL = 32 W, Pout = 10 mW
NCP2809 Series
TYPICAL CHARACTERISTICS
10 10
1 THD+N (%) THD+N (%) 20 40 60 80 100 120 140 160
1
0.1
0.1
0.01
0.01
0.001 0
0.001 0
10
20
30
40
50
60
70
80
90
OUTPUT POWER (mW)
OUTPUT POWER (mW)
Figure 12. THD+N vs. Power Out Vp = 5.0 V, RL = 16 W, 1.0 kHz
10 10
Figure 13. THD+N vs. Power Out Vp = 5.0 V, RL = 32 W, 1.0 kHz
1 THD+N (%) THD+N (%) 10 20 30 40 50 60
1
0.1
0.1
0.01
0.01
0.001 0
0.001 0
10
20
30
40
OUTPUT POWER (mW)
OUTPUT POWER (mW)
Figure 14. THD+N vs. Power Out Vp = 3.3 V, RL = 16 W, 1.0 kHz
10 10
Figure 15. THD+N vs. Power Out Vp = 3.3 V, RL = 32 W, 1.0 kHz
1 THD+N (%) THD+N (%) 10 20 30 40 50
1
0.1
0.1
0.01
0.01
0.001 0
0.001 0
5
10
15
20
25
30
35
OUTPUT POWER (mW)
OUTPUT POWER (mW)
Figure 16. THD+N vs. Power Out Vp = 3.0 V, RL = 16 W, 1.0 kHz
Figure 17. THD+N vs. Power Out Vp = 3.0 V, RL = 32 W, 1.0 kHz
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NCP2809 Series
TYPICAL CHARACTERISTICS
10 10
1 THD+N (%) THD+N (%) 0 5 10 15 20 25 30
1
0.1
0.1
0.01
0.01
0.001
0.001
0
5
10
15
20
OUTPUT POWER (mW)
OUTPUT POWER (mW)
Figure 18. THD+N vs. Power Out Vp = 2.4 V, RL = 16 W, 1.0 kHz
-40 -40
Figure 19. THD+N vs. Power Out Vp = 2.4 V, RL = 3.2 W, 1.0 kHz
CROSSTALK (dB)
-60
CROSSTALK (dB) 100 1000 FREQUENCY (Hz) 10000 100000
-50
-50
-60
-70
-70
-80 10
-80 10
100
1000 FREQUENCY (Hz)
10000
100000
Figure 20. Crosstalk Vp = 5.0 V, RL = 16 W, Pout = 75 mW
-40 -40
Figure 21. Crosstalk Vp = 5.0 V, RL = 32 W, Pout = 50 mW
CROSSTALK (dB)
-60
CROSSTALK (dB) 100 1000 FREQUENCY (Hz) 10000 100000
-50
-50
-60
-70
-70
-80 10
-80 10
100
1000 FREQUENCY (Hz)
10000
100000
Figure 22. Crosstalk Vp = 3.0 V, RL = 16 W, Pout = 30 mW
Figure 23. Crosstalk Vp = 3.0 V, RL = 32 W, Pout = 20 mW
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NCP2809 Series
TYPICAL CHARACTERISTICS
-40 -40
CROSSTALK (dB)
-60
CROSSTALK (dB) 100 1000 10000 100000
-50
-50
-60
-70
-70
-80 10
-80 10
100
FREQUENCY (Hz)
1000 10000 FREQUENCY (Hz)
100000
Figure 24. Crosstalk Vp = 2.4 V, RL = 16 W, Pout = 20 mW
-10 -20 -30 -40 PSRR (dB) -50 -60 -70 -80 -90 -100 -110 10 100 1000 10000 100000 PSRR (dB) NCP2809A -10 -20 -30 -40 -50 -60 -70 -80 -90 -100 -110 10
Figure 25. Crosstalk Vp = 2.4 V, RL = 32 W, Pout = 10 mW
NCP2809A
100
1000
10000
100000
FREQUENCY (Hz)
FREQUENCY (Hz)
Figure 26. PSRR - Input Grounded with 10 W Vp = 2.4 V, Vripple = 200 mV pk-pk, RL =16 W
-10 -20 -30 -40 PSRR (dB) -50 -60 -70 -80 -90 -100 -110 10 100 1000 10000 100000 PSRR (dB) NCP2809A -10 -20 -30 -40 -50 -60 -70 -80 -90 -100 -110 10
Figure 27. PSRR - Input Grounded with 10 W Vp = 2.4 V, Vripple = 200 mV pk-pk, RL = 32 W
NCP2809A
100
1000
10000
100000
FREQUENCY (Hz)
FREQUENCY (Hz)
Figure 28. PSRR - Input Grounded with 10 W Vp = 3.0 V, Vripple = 200 mV pk-pk, RL =16 W
Figure 29. PSRR - Input Grounded with 10 W Vp =3.0 V, Vripple = 200 mV pk-pk, RL = 32 W
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NCP2809 Series
TYPICAL CHARACTERISTICS
-10 -20 -30 -40 PSRR (dB) -50 -60 -70 -80 -90 -100 -110 10 100 1000 10000 100000 PSRR (dB) NCP2809A -10 -20 -30 -40 -50 -60 -70 -80 -90 -100 -110 10 100 1000 10000 100000 NCP2809A
FREQUENCY (Hz)
FREQUENCY (Hz)
Figure 30. PSRR - Input Grounded with 10 W Vp = 3.3 V, Vripple = 200 mV pk-pk, RL =16 W
-10 -20 -30 -40 PSRR (dB) -50 -60 -70 -80 -90 -100 -110 10 100 1000 10000 100000 PSRR (dB) NCP2809A -10 -20 -30 -40 -50 -60 -70 -80 -90 -100 -110 10
Figure 31. PSRR - Input Grounded with 10 W Vp = 3.3 V, Vripple = 200 mV pk-pk, RL = 32 W
NCP2809A
100
1000
10000
100000
FREQUENCY (Hz)
FREQUENCY (Hz)
Figure 32. PSRR - Input Grounded with 10 W Vp = 5.0 V, Vripple = 200 mV pk-pk, RL =16 W
Figure 33. PSRR - Input Grounded with 10 W Vp = 5.0 V, Vripple = 200 mV pk-pk, RL = 32 W
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NCP2809 Series
TYPICAL CHARACTERISTICS
-10 -20 -30 -40 PSRR (dB) PSRR (dB) -50 -60 -70 -80 -90 -100 -110 10 100 1000 10000 100000 FREQUENCY (Hz) NCP2809B -10 -20 -30 -40 -50 -60 -70 -80 -90 -100 -110 10 100 1000 10000 100000 FREQUENCY (Hz) NCP2809B
Figure 34. PSRR - Input Grounded with 10 W Vp = 2.4 V, Vripple = 200 mV pk-pk, RL =16 W, G = 1 (0 dB)
-10 -20 -30 -40 PSRR (dB) PSRR (dB) -50 -60 -70 -80 -90 -100 -110 10 100 1000 10000 100000 FREQUENCY (Hz) G=1 G=4 NCP2809B -10 -20 -30 -40 -50 -60 -70 -80 -90 -100 -110 10
Figure 35. PSRR - Input Grounded with 10 W Vp = 5.0 V, Vripple = 200 mV pk-pk, RL = 16 W, G = 1 (0 dB)
NCP2809B
G=4 G=1
100
1000
10000
100000
FREQUENCY (Hz)
Figure 36. PSRR - Input Grounded with 10 W Vp = 2.4 V, Vripple = 200 mV pk-pk, RL =16 W, G = 1 (0 dB) and G = 4 (12 dB)
Figure 37. PSRR - Input Grounded with 10 W Vp = 5.0 V, Vripple = 200 mV pk-pk, RL = 16 W, G = 1 (0 dB) and G = 4 (12 dB)
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NCP2809 Series
TYPICAL CHARACTERISTICS
Figure 38. Turning-On Time/Vp = 5.0 V and F = 100 Hz Ch1 = OUT_R, Ch2 = VMC and Ch3 = Shutdown
Figure 39. Turning-On Time Zoom/Vp = 5.0 V and F = 400 Hz Ch1 = OUT_R, Ch2 = VMC and Ch3 = Shutdown
Figure 40. Turning-Off Time/Vp = 5.0 V and F = 100 Hz Ch1 = OUT_R, Ch2 = VMC and Ch3 = Shutdown
Figure 41. TurningOff Time Zoom/Vp = 5.0 V and F = 400 Hz Ch1 = OUT_R, Ch2 = VMC and Ch3 = Shutdown
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NCP2809 Series
APPLICATION INFORMATION Detailed Description The NCP2809 power audio amplifier can operate from 2.6 V to 5.0 V power supply. It delivers 24 mWrms output power to a 16 W load (VP = 2.4 V) and 131 mWrms output power to a 16 W load (VP = 5.0 V). The structure of NCP2809 is basically composed of two identical internal power amplifiers; NCP2809A has a fixed internal gain of 0 dB and the gain can be set externally with the NCP2809B. Internal Power Amplifier The output Pmos and Nmos transistors of the amplifier are designed to deliver the specified output power without clipping. The channel resistance (Ron) of the Nmos and Pmos transistors does not exceed 3.0 W when driving current. The structure of the internal power amplifier is composed of three symmetrical gain stages, first and medium gain stages are transconductance gain stages in order to maximize bandwidth and DC gain. Turn-On and Turn-Off Transitions A Turn-on/off transition is shown in the following plot corresponding to curves in Figures 38 to 41. In order to eliminate "pop and click" noises during transitions, output power in the load must be slowly established or cut. When logic high is applied to the shutdown pin, the bypass voltage begins to rise exponentially and once the output DC level is around the common mode voltage, the gain is established slowly (50 ms). This way to turn-on the device is optimized in terms of rejection of "pop and click" noises. The device has the same behavior when turned-off by a logic low on the shutdown pin. During the shutdown mode, amplifier outputs are connected to the ground. A theoretical value of turn-on and off times at 25C is given by the following formula. Cby: Bypass Capacitor R: Internal 300 k resistor with a 25% accuracy Ton = 0.95 * R * Cby Toff = R * Cby * Ln(Vp/1.4) Shutdown Function The device enters shutdown mode when shutdown signal is low. During the shutdown mode, the DC quiescent current of the circuit does not exceed 600 nA. Current Limit Protection Circuitry The maximum output power of the circuit (POrms = 135 mW, VP = 5.0 V, RL = 16 W) requires a peak current in the load of 130 mA. In order to limit excessive power dissipation in the load when a short-circuit occurs, the current limit in the load is fixed to 250 mA. The current in the output MOS transistors is real-time monitored, and when exceeding 250 mA, the gate voltage of the corresponding MOS transistor is clipped and no more current can be delivered. Thermal Overload Protection Circuitry Internal amplifiers are switched off when temperature exceeds 160C, and will be switched back on only when the temperature goes below 140C. NCP2809 is a stereo power audio amplifier. If the application requires a Single Ended topology with output coupling capacitors, then the current provided by the battery for one output is as following: * VO(t) is the AC voltage seen by the load. Here we consider a sine wave signal with a period T and a peak voltage VO. * RL is the load.
Ip(t) VO/RL
T/2
T
TIME
So, the total power delivered by the battery to the device is:
PTOT + Vp Ipavg + 1 2p Vp.Vo PTOT + p.RL Ipavg p Vo V sin(t)dt + o p.RL RL 0
The power in the load is POUT.
V2 POUT + O 2RL
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NCP2809 Series
The dissipated power by the device is
PD + PTOT * POUT V PD + o RL VP * VO p 2
The power in the load is POUT
V2 POUT + O 2RL
The dissipated power by the device is
PD + PTOT * POUT V PD + o RL 2VP * VO p 2
At a given power supply voltage, the maximum power dissipated is:
VP2 PDmax + 2p2.RL
Of course, if the device is used in a typical stereo application, each load with the same output power will give the same dissipated power. Thus the total lost power for the device is:
V PD + o RL 2VP * V O p
At a given power supply voltage, the maximum power dissipated is:
2VP2 PDmax + p2.RL
And in this case, the maximum power dissipated will be:
V2 PDmax + P p2.RL
Of course, if the device is used in a typical stereo application, each load with the same output power will give the same dissipated power. Thus the total lost power for the device is:
V PD + o RL 4VP * V O p
In single ended operation, the efficiency is:
h+ p.VO 2VP
And in this case, the maximum power dissipated will be:
4VP2 PDmax + p2.RL
If the application requires a NOCAP scheme without output coupling capacitors, then the current provided by the battery for one output is as following: * Vo(t) is the AC voltage seen by the load. Here we consider a sine wave signal with a period T and a peak voltage VO. * RL is the load.
Ip(t) VO/RL
In NOCAP operation, the efficiency is:
h+ p.VO 4VP
T/2
T
TIME
So, the total power delivered by the battery to the device is:
PTOT + Vp Ipavg + 1 p Ipavg p Vo 2Vo sin(t)dt + p.RL RL 0
Gain-Setting Selection With NCP2809 Audio Amplifier family, you can select a closed-loop gain of 0db for the NCP2809A and an external gain setting with the NCP2809B. In order to optimize device and system performance, NCP2809 needs to be used in low gain configurations. It minimizes THD+N values and maximizes the signal-to-noise ratio, and the amplifier can still be used without running into the bandwidth limitations. NCP2809A can be used when a 0 dB gain is required. Adjustable gain is available on NCP2809B.
2Vp.Vo PTOT + p.RL
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NCP2809 Series
NCP2809 Amplifier External Components
Input Capacitor Selection (Cin) With Output Coupling Capacitor
The input coupling capacitor blocks the DC voltage at the amplifier input terminal. This capacitor creates a high-pass filter with the internal Rinternal resistor of 50 kW, the cut-off frequency of which is given by:
1 fc + 2 * p * Rin * Cin
(eq. 1)
The size of the capacitor must be large enough to couple in low frequencies without severe attenuation. However a large input coupling capacitor requires more time to reach its quiescent DC voltage (VP/2) and can increase the turn-on pops. An input capacitor value of 100 nF performs well in many applications (With Rinternal =50 kW).
Bypass Capacitor Selection (Cbypass)
However, when using a low cost jack connector (with third connection to ground), the headset amplifier requires very few external components as described in Figure 43. Only two external coupling capacitors are needed. The main concern is in output coupling capacitors, because of the value and consequently the size of the components required. Purpose of these capacitors is biasing DC voltage and very low frequency elimination. Both, coupling capacitor and output load form a high pass filter. Audible frequency ranges from 20 Hz to 20 kHz, but headset used in portable appliance has poor ability to reproduce signals below 75 or 100 Hz. Input coupling capacitor and input resistance also form a high pass filter. These two first order filters form a second order high pass filter with the same -3 dB cut off frequency. Consequently, the following formula must be respected:
2 p 1 50 kW Cin [ 2 p 1 RL Cout
(eq. 2)
The bypass capacitor Cby provides half-supply filtering and determines how fast the NCP2809 turns on. A proper supply bypassing is critical for low noise performance and high power supply rejection ratio. Moreover, this capacitor is a critical component to minimize the turn-on pop noise. A 1.0 mF bypass capacitor value should produce clickless and popless shutdown transitions. The amplifier is still functional with a 0.1 mF capacitor value but is more sensitive to "pop and click" noises. Thus, for optimized performances, a 1.0 mF ceramic bypassing capacitor is recommended.
Without Output Coupling Capacitor
Like for loudspeaker amplifier, the input impedance value for calculating filters cut off frequency is the minimum input impedance value at maximum output volume. To obtain a frequency equal to when frequency is 5 times the cut off frequency, attenuation is 0.5 dB. So if we want a 0.5 dB at 150 Hz, we need to have a -3 dB cut off frequency of 30 Hz:
f-3dB w 2 Cout w 2 p p 1 RL 1 RL Cout f-3dB
(eq. 3) (eq. 4)
As described in Figure 42, the internal circuitry of the NCP2809 device eliminates need of heavy bypassing capacitors when connecting a stereo headset with 3 connecting points. This circuitry produces a virtual ground and does not affect either output power or PSRR. Additionally, eliminating these capacitors reduces cost and PCB place. However, user must take care to the connection between pin REF_I and ground of the headset: this pin is the ground reference for the headset. So, in order to improve crosstalk performances, this pin must be plugged directly to the ground pin of the headset connector.
With RL = 16 W, and f-3dB = 30 Hz formula (4) shows that Cout 330 mF. With Cout = 220 mF, 0.5 dB attenuation frequency will be 225 Hz with a -3.0 dB cut off frequency of 45 Hz. Following this, the input coupling capacitor choice is straightforward. Using formula (2) input coupling capacitor value would be 68 nF for a 220 mF output coupling capacitor and 100 nF for a 330 mF output coupling capacitor. When using the NCP2809 with this configuration, pins REF_I and OUT_I must be left unconnected (see Figure 43).
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NCP2809 Series
VP
1 mF
CS
VP 20 kW AUDIO INPUT CI 390 nF VP BYPASS Cbypass 1 mF CI 390 nF + - 20 kW 20 kW SHUTDOWN VIH VIL VM SHUTDOWN CONTROL IN_L 20 kW BYPASS - + OUT_L + 16 W VMC BRIDGE + - OUT_I REF_I OUT_R + - - 16 W
AUDIO INPUT
IN_R
Figure 42. Typical Application Schematic Without Output Coupling Capacitor
VP
1 mF
CS
VP 20 kW AUDIO INPUT CI 390 nF VP BYPASS Cbypass 1 mF CI 390 nF + - 20 kW 20 kW SHUTDOWN VIH VIL VM SHUTDOWN CONTROL IN_L 20 kW BYPASS - + OUT_L 220 mF + Cout + 16 W VMC BRIDGE + - OUT_I REF_I OUT_R - NC - NC 220 mF + Cout 16 W +
AUDIO INPUT
IN_R
Figure 43. Typical Application Schematic With Output Coupling Capacitor
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NCP2809 Series
DEMONSTRATION BOARD AND LAYOUT GUIDELINES
VP J4 1 mF C1 7 VP 1 IN_R VP J2 3 BYPASS C3 VM1 C4 390 nF VP R1 J1 VM VM1 9 VM1 VP J10 1 mF C5 7 VP 1 IN_R VP J8 3 BYPASS C7 VM2 C8 390 nF VP R2 J7 VM VM2 9 VM2 100 k 2 SHUTDOWN SHUTDOWN CONTROL 1 mF VMC BRIDGE 3 + 2 - 1 OUT_I REF_I 3 + 2- 20 kW 20 kW 1 OUT_L 8 4 6 NC NC VM2 C10 + 220 mF - 16 W + VM2 20 kW BYPASS 20 kW 2 - 3+ 1 OUT_R 10 + C9 - U3 VP 100 k 2 SHUTDOWN SHUTDOWN CONTROL 1 mF VMC BRIDGE 3 + 2 - 1 OUT_I REF_I 3 + 2- 20 kW 20 kW 1 OUT_L 8 4 6 - 16 W + 20 kW BYPASS 20 kW 2 - 3+ 1 OUT_R 10 - U1 VP
VM1 VM1 C2 390 nF
+ 16 W
J3 & U2
VM1 5 IN_L
VM2 VM2 C6 390 nF
+ 16 W
220 mF J9 & U4
VM2 5 IN_L
Figure 44. Schematic of the Demonstration Board for Micro10 Device
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NCP2809 Series
TOP LAYER
BOTTOM LAYER Figure 45. Demonstration Board for Micro10 Device - PCB Layers
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NCP2809 Series
Table 1. Bill of Material
Item 1 2 3 4 5 6 7 8 9 Part Description NCP2809 Audio Amplifier SMD Resistor 100 KW Ceramic Capacitor 390 nF 50 V Z5U Ceramic Capacitor 1.0 mF 16 V X7R Optimized Performance Tantalum Capacitor 220 mF 10 V I/O Connector. It can be plugged by BLZ5.08/2 (Weidmuller Reference) I/O Connector. It can be plugged by BLZ5.08/3 (Weidmuller Reference) 3.5 mm PCB Jack Connector Jumper Header Vertical Mount 2*1, 2.54 mm Ref. U1,U3 R1,R2 C2,C4, C6,C8 C1,C3, C5,C7 C9,C10 J4,J10 J2,J3, J8,J9 U2,U4 J1,J7 PCB Footprint Micro10 0805 1812 1206 - - - - - Manufacturer ON Semiconductor Vishay-Draloric Kemet Murata Kemet Weidmuller Weidmuller Decelect-Forgos - Manufacturer Reference NCP2809 D12CRCW Series C1812C394M5UAC GRM42-6X7R105K16 T495X227010AS SL5.08/2/90B SL5.08/3/90B IES 101-3 -
PCB LAYOUT GUIDELINES
How to Optimize the Accuracy of VMC How to Optimize THD+N Performances
The main innovation of the NCP2809 stereo NOCAP audio amplifier is the use of a virtual ground that allows connecting directly the headset on the outputs of the device saving DC-blocking output capacitors. In order to have the best performances in terms of crosstalk, noise and supply current, the feedback connection on the virtual ground amplifier is not closed internally. To reach this goal of excellence, one must connect OUT_I and REF_I as close as possible from the middle point of the output jack connector. The most suitable place for this connection is directly on the pad of this middle point.
To get the best THD+N level on the headset speakers, the traces of the power supply, ground, OUT_R, OUT_L and OUT_I need the lowest resistance. Thus, the PCB traces for these nets should be as wide and short as possible. You need to avoid ground loops, run digital and analog traces parallel to each other. Due to its internal structure, the amplifier can be sensitive to coupling capacitors between Ground and each output (OUT_R, OUT_L and OUT_I). Avoid running the output traces between two ground layers or if traces must cross over on different layers, do it at 90 degrees.
ORDERING INFORMATION
Device NCP2809ADMR2 NCP2809BDMR2 NCP2809BDMR2G Marking MAE MAC MAC Package Micro10 Micro10 Micro10 (Pb-Free) Shipping 4000 Tape & Reel 4000 Tape & Reel 4000 Tape & Reel
For information on tape and reel specifications, including part orientation and tape sizes, please refer to our Tape and Reel Packaging Specifications Brochure, BRD8011/D.
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NCP2809 Series
PACKAGE DIMENSIONS
Micro10 DM SUFFIX CASE 846B-03 ISSUE C
-A-
K
-B-
PIN 1 ID
G
D 8 PL 0.08 (0.003)
M
TB
S
A
S
NOTES: 1. DIMENSIONING AND TOLERANCING PER ANSI Y14.5M, 1982. 2. CONTROLLING DIMENSION: MILLIMETER. 3. DIMENSION "A" DOES NOT INCLUDE MOLD FLASH, PROTRUSIONS OR GATE BURRS. MOLD FLASH, PROTRUSIONS OR GATE BURRS SHALL NOT EXCEED 0.15 (0.006) PER SIDE. 4. DIMENSION "B" DOES NOT INCLUDE INTERLEAD FLASH OR PROTRUSION. INTERLEAD FLASH OR PROTRUSION SHALL NOT EXCEED 0.25 (0.010) PER SIDE. 5. 846B-01 OBSOLETE. NEW STANDARD 846B-02 DIM A B C D G H J K L MILLIMETERS MIN MAX 2.90 3.10 2.90 3.10 0.95 1.10 0.20 0.30 0.50 BSC 0.05 0.15 0.10 0.21 4.75 5.05 0.40 0.70 INCHES MIN MAX 0.114 0.122 0.114 0.122 0.037 0.043 0.008 0.012 0.020 BSC 0.002 0.006 0.004 0.008 0.187 0.199 0.016 0.028
0.038 (0.0015) -T- SEATING
PLANE
C H J L
SOLDERING FOOTPRINT*
10X
1.04 0.041
0.32 0.0126
10X
3.20 0.126
4.24 0.167
5.28 0.208
8X
0.50 0.0196
SCALE 8:1
mm inches
*For additional information on our Pb-Free strategy and soldering details, please download the ON Semiconductor Soldering and Mounting Techniques Reference Manual, SOLDERRM/D.
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NCP2809 Series
NOCAP is a trademark of Semiconductor Components Industries, LLC (SCILLC).
ON Semiconductor and are registered trademarks of Semiconductor Components Industries, LLC (SCILLC). SCILLC reserves the right to make changes without further notice to any products herein. SCILLC makes no warranty, representation or guarantee regarding the suitability of its products for any particular purpose, nor does SCILLC assume any liability arising out of the application or use of any product or circuit, and specifically disclaims any and all liability, including without limitation special, consequential or incidental damages. "Typical" parameters which may be provided in SCILLC data sheets and/or specifications can and do vary in different applications and actual performance may vary over time. All operating parameters, including "Typicals" must be validated for each customer application by customer's technical experts. SCILLC does not convey any license under its patent rights nor the rights of others. SCILLC products are not designed, intended, or authorized for use as components in systems intended for surgical implant into the body, or other applications intended to support or sustain life, or for any other application in which the failure of the SCILLC product could create a situation where personal injury or death may occur. Should Buyer purchase or use SCILLC products for any such unintended or unauthorized application, Buyer shall indemnify and hold SCILLC and its officers, employees, subsidiaries, affiliates, and distributors harmless against all claims, costs, damages, and expenses, and reasonable attorney fees arising out of, directly or indirectly, any claim of personal injury or death associated with such unintended or unauthorized use, even if such claim alleges that SCILLC was negligent regarding the design or manufacture of the part. SCILLC is an Equal Opportunity/Affirmative Action Employer. This literature is subject to all applicable copyright laws and is not for resale in any manner.
PUBLICATION ORDERING INFORMATION
LITERATURE FULFILLMENT: N. American Technical Support: 800-282-9855 Toll Free Literature Distribution Center for ON Semiconductor USA/Canada P.O. Box 61312, Phoenix, Arizona 85082-1312 USA Phone: 480-829-7710 or 800-344-3860 Toll Free USA/Canada Japan: ON Semiconductor, Japan Customer Focus Center 2-9-1 Kamimeguro, Meguro-ku, Tokyo, Japan 153-0051 Fax: 480-829-7709 or 800-344-3867 Toll Free USA/Canada Phone: 81-3-5773-3850 Email: orderlit@onsemi.com ON Semiconductor Website: http://onsemi.com Order Literature: http://www.onsemi.com/litorder For additional information, please contact your local Sales Representative.
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NCP2809/D


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