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AD7357 Datasheet(PDF) 13 Page - Analog Devices |
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AD7357 Datasheet(HTML) 13 Page - Analog Devices |
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13 / 20 page ![]() AD7357 Rev. 0 | Page 13 of 20 For ac applications, it is recommended to remove high frequency components from the analog input signal by the use of an RC low-pass filter on the analog input pins. In applications where harmonic distortion and signal-to-noise ratio are critical, the analog input should be driven from a low impedance source. Large source impedances significantly affect the ac performance of the ADC and may necessitate the use of an input buffer amplifier. The choice of the op amp is a function of the particular application. When no amplifier is used to drive the analog input, the source impedance should be limited to low values. The maximum source impedance depends on the amount of THD that can be tole- rated. The THD increases as the source impedance increases and performance degrades. Figure 17 shows a graph of the THD vs. the analog input signal frequency for various source impedances. –89 –87 –85 –83 –81 –79 –77 –75 –73 –71 –69 –67 –65 100 200 1000 1500 2000 2500 FREQUENCY (kHz) 10 Ω 33 Ω 50 Ω 100 Ω Figure 17. THD vs. Analog Input Frequency for Various Source Impedances Figure 18 shows a graph of the THD vs. the analog input frequency while sampling at 4.2 MSPS. In this case, the source impedance is 33 Ω. –90.0 –86.0 –82.0 –78.0 –74.0 –70.0 –66.0 0 1000 2000 3000 4000 5000 ANALOG INPUT FREQUENCY (kHz) Figure 18. THD vs. Analog Input Frequency ANALOG INPUTS Differential signals have some benefits over single-ended signals, including noise immunity based on the device’s common-mode rejection and improvements in distortion performance. Figure 19 defines the fully differential input of the AD7357. VIN+ AD7357* VIN– VREF p-p VREF p-p *ADDITIONAL PINS OMITTED FOR CLARITY. COMMON MODE VOLTAGE Figure 19. Differential Input Definition The amplitude of the differential signal is the difference between the signals applied to the VIN+ and VIN− pins in each differential pair (VIN+ − VIN−). VIN+ and VIN− should be simultaneously driven by two signals each of amplitude VREF that are 180° out of phase. This amplitude of the differential signal is, therefore, –VREF to +VREF peak-to-peak regardless of the common mode (CM). CM is the average of the two signals and is, therefore, the voltage on which the two inputs are centered. CM = (VIN+ + VIN−)/2 This results in the span of each input being CM ± VREF/2. This voltage has to be set up externally. When setting up the CM, ensure that that VIN+ and VIN− remain within GND/VDD. When a conversion takes place, CM is rejected, resulting in a virtually noise free signal of amplitude –VREF to +VREF corresponding to the digital codes of 0 to 16,383. DRIVING DIFFERENTIAL INPUTS Differential operation requires VIN+ and VIN− to be driven simulta- neously with two equal signals that are 180° out of phase. Because not all applications have a signal preconditioned for differential operation, there is often a need to perform a single-ended-to- differential conversion. |
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