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PCM1753DBQ 数据表(PDF) 24 Page - Texas Instruments |
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PCM1753DBQ 数据表(HTML) 24 Page - Texas Instruments |
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24 / 41 page ![]() BCK 16 15 14 13 12 11 10 9 1 2 3 4 5 6 7 8 DATA LRCK DGND NC VCC VOUTL VOUTR SCK AGND FMT MUTE DEMP TEST VCOM ZEROA 10 µF Post LPF 10 µF PCM1754 +5 V + L-Ch Out PCM Audio Data Post LPF R-Ch Out System Clock Zero Mute Control Format MUTE On/Off DEMP On/Off 10 µF 10 µF 24 PCM1753, PCM1754, PCM1755 SLES092E – APRIL 2003 – REVISED JULY 2019 www.ti.com Product Folder Links: PCM1753 PCM1754 PCM1755 Submit Documentation Feedback Copyright © 2003–2019, Texas Instruments Incorporated 9 Application and Implementation NOTE Information in the following applications sections is not part of the TI component specification, and TI does not warrant its accuracy or completeness. TI’s customers are responsible for determining suitability of components for their purposes. Customers should validate and test their design implementation to confirm system functionality. 9.1 Application Information The delta-sigma section of the PCM175x device is based on an 8-level amplitude quantizer and a 4th-order noise shaper. This section converts the oversampled input data to 8-level delta-sigma format. A block diagram of the 8- level delta-sigma modulator is shown in Figure 32. This 8-level delta-sigma modulator has the advantage of stability and clock jitter sensitivity over the typical one-bit (2-level) delta-sigma modulator. The combined oversampling rate of the delta-sigma modulator and the interpolation filter is 64 fS. The theoretical quantization noise performance of the 8-level delta-sigma modulator is shown in Figure 35 and Figure 36. The enhanced multilevel delta-sigma architecture also has advantages for input clock jitter sensitivity due to the multilevel quantizer, with the simulated jitter sensitivity shown in Figure 37. The PCM175X devices are suitable for a wide variety of cost-sensitive consumer applications requiring good performance and operation with a single 5-V supply. 9.2 Typical Application A basic connection diagram is shown in Figure 30, with the necessary power supply bypassing and decoupling components. TI recommends using the component values shown in Figure 30 for all designs. The use of series resistors (22 Ω to 100 Ω) is recommended for the SCK, LRCK, BCK, and DATA inputs. The series resistor combines with the stray PCB and device input capacitance to form a low-pass filter, which reduces high-frequency noise emissions and helps to dampen glitches and ringing present on clock and data lines. For this design example, use the parameters listed in Table 7. Figure 30. Basic Connection Diagram |
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