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AD7475ARMZ датащи(PDF) 20 Page - Analog Devices |
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AD7475ARMZ датащи(HTML) 20 Page - Analog Devices |
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20 / 24 page ![]() AD7475/AD7495 Data Sheet Rev. D | Page 20 of 24 SERIAL INTERFACE Figure 26 shows the detailed timing diagram for serial interfacing to the AD7475/AD7495. The serial clock provides the conversion clock and controls the transfer of information from the AD7475/AD7495 during conversion. CS initiates the data transfer and conversion process. The falling edge of CS puts the track-and-hold into hold mode and takes the bus out of three-state. The analog input is sampled at this point. The conversion is also initiated at this point and requires 16 SCLK cycles to complete. Once 13 SCLK falling edges have elapsed, the track-and-hold goes back into track on the next SCLK rising edge, as shown in Figure 26 at Point B. On the 16th SCLK falling edge, the SDATA line goes back into three-state. If the rising edge of CS occurs before 16 SCLKs have elapsed, the conversion is terminated and the SDATA line goes back into three-state, as shown in Figure 27; otherwise SDATA returns to three-state on the 16th SCLK falling edge, as shown in Figure 26. Sixteen serial clock cycles are required to perform the conversion process and to access data from the AD7475/AD7495. CS going low provides the first leading zero to be read in by the microcontroller or DSP. The remaining data is then clocked out by subsequent SCLK falling edges beginning with the second leading zero; thus the first falling clock edge on the serial clock has the second leading zero provided. The final bit in the data transfer is valid on the 16th falling edge, having been clocked out on the previous (15th) falling edge. In applications with a slower SCLK, it may be possible to read in data on each SCLK rising edge, although the first leading zero still has to be read on the first SCLK falling edge after the CS falling edge. Therefore, the first rising edge of SCLK after the CS falling edge provides the second leading zero and the 15th rising SCLK edge has DB0 provided. This method may not work with most microprocessors/DSPs, but could be used with FPGAs and ASICs. SCLK 1 5 13 15 SDATA FOUR LEADING ZEROS THREE-STATE t4 2 3 16 t5 t3 tQUIET tCONVERT t2 THREE-STATE DB11 DB10 DB2 DB0 t6 t7 t8 14 0 0 0 0 B DB1 4 CS Figure 26. Serial Interface Timing Diagram SCLK 1 5 13 15 SDATA FOUR LEADING ZEROS THREE-STATE t4 2 3 16 t9 t3 tQUIET tCONVERT t2 THREE-STATE DB11 DB10 DB2 t6 t7 14 0 0 0 0 B 4 CS Figure 27. Serial Interface Timing Diagram — Conversion Termination |
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