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ADA4805-1ARJZ-R7 数据表(PDF) 21 Page - Analog Devices |
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ADA4805-1ARJZ-R7 数据表(HTML) 21 Page - Analog Devices |
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21 / 25 page ![]() Data Sheet ADA4805-1/ADA4805-2 Rev. B | Page 21 of 25 Figure 60 shows a typical 16-bit, single-supply application. The ADA4805-1/ADA4805-2 drive the AD7980, a 16-bit, 1 MSPS, SAR ADC in a low power configuration. The AD7980 operates on a 2.5 V supply and supports an input from 0 V to VREF. In this case, the ADR435 provides a 5 V reference. The ADA4805-1/ ADA4805-2 are used both as a driver for the AD7980 and as a reference buffer for the ADR435. The low-pass filter formed by R3 and C1 reduces the noise to the input of the ADC (see Figure 60). In lower frequency applications, the designer can reduce the corner frequency of the filter to remove additional noise. AD7980 C2 10µF IN+ IN– GND VDD REF C3 0.1µF C4 100nF VDD C1 2.7nF R3 20Ω +7.5V +7.5V ADA4805-1/ ADA4805-2 ADA4805-1/ ADA4805-2 ADR435 5V REF 0V TO VREF Figure 60. Driving the AD7980 with the ADA4805-1/ADA4805-2 In this configuration, the ADA4805-1/ADA4805-2 consume 7.2 mW of quiescent power. The measured signal-to-noise ratio (SNR), total harmonic distortion (THD), and signal-to-noise- and-distortion ratio (SINAD) of the whole system for a 10 kHz signal are 89.4 dB, 104 dBc, and 89.3 dB, respectively. This translates to an effective number of bits (ENOB) of 14.5 at 10 kHz, which is compatible with the AD7980 performance. Table 10 shows the performance of this setup at selected input frequencies. DYNAMIC POWER SCALING One of the merits of a SAR ADC, like the AD7980, is that its power scales with the sampling rate. This power scaling makes SAR ADCs very power efficient, especially when running at a low sampling frequency. However, the ADC driver used with the SAR ADC traditionally consumes constant power regardless of the sampling frequency. Figure 61 illustrates a method by which the quiescent power of the ADC driver can be dynamically scaled with the sampling rate of the system. By providing properly timed signals to the convert start (CNV) pin of the ADC and the SHUTDOWNE pin of the ADA4805-1/ADA4805-2, both devices can be run at optimum efficiency. +5V 2.7nF 20Ω TIMING GENERATOR VIN AD7980 ADA4805-1/ ADA4805-2 REF VDD GND +6V +2.5V 0.1µF CNV Figure 61. ADA4805-1/ADA4805-2/AD7980 Power Management Circuitry Figure 62 illustrates the relative signal timing for power scaling the ADA4805-1/ADA4805-2 and the AD7980. To prevent any degradation in the performance of the ADC, the ADA4805-1/ ADA4805-2 must have a fully settled output into the ADC before the activation of the CNV pin. In this example, the amplifier is switched to full power mode 3 μs prior to the rising edge of the CNV signal. The SHUTDOWNE pin of the ADA4805-1/ADA4805-2 is pulled low when the ADC input is inactive in between samples. The quiescent current of the amplifier typically falls to 10% of the normal operating value within 0.9 μs at VS = 5 V. While in shutdown mode, the ADA4805-1/ADA4805-2 output impedance is high. Table 10. System Performance at Selected Input Frequency for Driving the AD7980 Single-Ended ADC Driver Reference Buffer Results Input Frequency (kHz) Supply (V) Gain Supply (V) Gain SNR (dB) THD (dBc) SINAD (dB) ENOB 1 7.5 1 7.5 1 89.8 103 89.6 14.6 10 7.5 1 7.5 1 89.4 104 89.3 14.5 20 7.5 1 7.5 1 89.9 103 89.7 14.6 50 7.5 1 7.5 1 88.5 99 88.1 14.3 100 7.5 1 7.5 1 86.3 93.7 85.6 13.9 |
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