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AD9767 Folha de dados(PDF) 13 Page - Analog Devices |
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AD9767 Folha de dados(HTML) 13 Page - Analog Devices |
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13 / 27 page ![]() REV. B AD9767 –13– INPUT CLOCK AND DATA TIMING RELATIONSHIP SNR in a DAC is dependent on the relationship between the position of the clock edges and the point in time at which the input data changes. The AD9767 is rising edge triggered, and so exhibits SNR sensitivity when the data transition is close to this edge. In general, the goal when applying the AD9767 is to make the data transition close to the falling clock edge. This becomes more important as the sample rate increases. Figure 29 shows the relationship of SNR to clock placement with different sample rates. Note that at the lower sample rates, much more tolerance is allowed in clock placement, while much more care must be taken at higher rates. TIME OF DATA CHANGE RELATIVE TO RISING CLOCK EDGE – ns 0 –4 –2 0 23 –3 –1 4 1 10 20 30 40 50 60 70 80 Figure 29. SNR vs. Clock Placement @ fOUT = 20 MHz and fCLK = 125 MSPS SLEEP MODE OPERATION The AD9767 has a power-down function that turns off the output current and reduces the supply current to less than 8.5 mA over the specified supply range of 3.0 V to 5.5 V and tempera- ture range. This mode can be activated by applying a Logic Level “1” to the SLEEP pin. The SLEEP pin logic threshold is equal to 0.5 × AVDD. This digital input also contains an active pull-down circuit that ensures the AD9767 remains enabled if this input is left disconnected. The AD9767 takes less than 50 ns to power down and approximately 5 µs to power back up. POWER DISSIPATION The power dissipation, PD, of the AD9767 is dependent on several factors that include: (1) The power supply voltages (AVDD and DVDD), (2) the full-scale current output IOUTFS, (3) the update rate fCLOCK, (4) and the reconstructed digital input waveform. The power dissipation is directly proportional to the analog supply current, IAVDD, and the digital supply cur- rent, IDVDD. IAVDD is directly proportional to IOUTFS as shown in Figure 30 and is insensitive to fCLOCK. IOUTFS 05 10 10 20 30 40 50 60 70 80 15 20 25 Figure 30. IAVDD vs. IOUTFS Conversely, IDVDD is dependent on both the digital input wave- form, fCLOCK, and digital supply DVDD. Figures 31 and 32 show IDVDD as a function of full-scale sine wave output ratios (fOUT/fCLOCK) for various update rates with DVDD = 5 V and DVDD = 3 V, respectively. Note how IDVDD is reduced by more than a factor of 2 when DVDD is reduced from 5 V to 3 V. RATIO – fOUT/fCLK 0 0.1 0 5 10 15 20 25 30 35 0.2 0.3 0.4 0.5 125MSPS 100MSPS 65MSPS 25MSPS 5MSPS Figure 31. IDVDD vs. Ratio @ DVDD = 5 V RATIO – fOUT/fCLK 0 0.1 0 2 4 6 8 10 12 14 0.2 0.3 0.4 0.5 16 18 125MSPS 100MSPS 65MSPS 25MSPS 5MSPS Figure 32. IDVDD vs. Ratio @ DVDD = 3 V |
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