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AD9920ABBCZ Datasheet(PDF) 22 Page - Analog Devices |
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AD9920ABBCZ Datasheet(HTML) 22 Page - Analog Devices |
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22 / 112 page ![]() AD9920A Rev. B | Page 22 of 112 DIGITAL DATA OUTPUTS The AD9920A data output and DCLK phase are programmable using the DOUTPHASE registers (Address 0x39, Bits[13:0]). DOUTPHASEP (Bits[5:0]) selects any edge location from 0 to 63, as shown in Figure 25. DOUTPHASEN (Bits[13:8]) does not actually program the phase of the data outputs but is used internally and should always be programmed to a value of DOUTPHASEP plus 32 edges. For example, if DOUTPHASEP is set to 0, DOUTPHASEN should be set to 32 (0x20). Normally, the data output and DCLK signals track in phase, based on the contents of the DOUTPHASE registers. The DCLK output phase can also be held fixed with respect to the data out- puts by setting the DCLKMODE register high (Address 0x39, Bit 16). In this mode, the DCLK output remains at a fixed phase equal to a delayed version of CLI, and the data output phase remains programmable. The pipeline delay through the AD9920A is shown in Figure 26. After the CCD input is sampled by SHD, there is a 16-cycle delay until the data is available. P[0] P[64] = P[0] PIXEL PERIOD P[16] P[32] P[48] DOUT DCLK tOD NOTES 1. DATA OUTPUT (DOUT) AND DCLK PHASE ARE ADJUSTABLE WITH RESPECT TO THE PIXEL PERIOD. 2. WITHIN ONE CLOCK PERIOD, THE DATA TRANSITION CAN BE PROGRAMMED TO 64 DIFFERENT LOCATIONS. 3. DCLK CAN BE INVERTED WITH RESPECT TO DOUT BY USING THE DCLKINV REGISTER. Figure 25. Digital Output Phase Adjustment Using DOUTPHASEP Register NOTES 1. TIMING VALUES SHOWN ARE SHDLOC = 0, WITH DCLKMODE = 0. 2. HIGHER VALUES OF SHD AND/OR DOUTPHASE SHIFT DOUT TRANSITION TO THE RIGHT, WITH RESPECT TO CLI LOCATION. 3. RECOMMENDED VALUE FOR DOUTPHASE IS TO USE SHPLOC OR UP TO 15 EDGES FOLLOWING SHPLOC. DCLK DOUT CCDIN CLI SHD (INTERNAL) ADC DOUT (INTERNAL) NN + 2 N + 1 N + 3 N + 13 N + 12 N + 11 N + 10 N + 9 N + 8 N + 7 N + 6 N + 5 N + 4 N + 14 SAMPLE PIXEL N N + 16 N + 17 N + 15 N – 14 N – 4 N – 5 N – 6 N – 7 N – 8 N – 9 N – 10 N – 11 N – 12 N – 13 N – 3 N – 2 N – 1 N N + 1 N – 15 N – 16 N – 17 tCLIDLY PIPELINE LATENCY = 16 CYCLES N – 14 N – 4 N – 5 N – 6 N – 7 N – 8 N – 9 N – 10 N – 11 N – 12 N – 13 N – 3 N – 2 N – 1 N N + 1 N – 15 N – 16 N – 17 tDOUTINH Figure 26. Digital Data Output Pipeline Delay |
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