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AD8556ACPZ-R2 数据表(PDF) 25 Page - Analog Devices |
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AD8556ACPZ-R2 数据表(HTML) 25 Page - Analog Devices |
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25 / 28 page ![]() AD8556 Data Sheet Important: Once a programming attempt is made for any fuse, there should be no further attempt to blow that fuse. If a fuse does not program to the expected state, discard the unit. The expected incidence rate of attempted but unblown fuses is very small when following the proper programming procedure and conditions. 3. Set VSS to 0 V and VDD to 5.25 V (±0.25 V). Power supplies should be capable of supplying 250 mA at the required voltage and properly bypassed as described in the Programming Mode section. Use program mode to permanently enter the desired codes for the first stage gain, second stage gain, and output offset. Blow the parity bit fuse if necessary (see Parity Error Detection section). Blow the master fuse to allow the AD8556 to read data from the fuses and to prevent further programming. 4. Set VDD and VSS to the desired values in the application. Use read mode with low sense current followed by high sense current to verify programmed codes. 5. Measure gain and offset to verify correct functionality. Determining Optimal Gain and Offset Codes First, determine the desired gain: 1. Determine the desired gain, GA (using the measurements obtained from the simulation). 2. Use Table 7 to determine G2, the second stage gain, such that (4.00 × 1.04) < (GA/G2) < (6.4/1.04). This ensures the first and last codes for the first stage gain are not used, thereby allowing enough first stage gain codes within each second stage gain range to adjust for the 3% accuracy. Next, set the second stage gain: 1. Use the simulation mode to set the second stage gain to G2. 2. Set the output offset to allow the AD8556 gain to be measured, for example, use Code 128 to set it to midsupply. 3. Use Table 6 or Equation 1 to set the first stage gain code CG1, so the first stage gain is nominally GA/G2. 4. Measure the resulting gain, GB. GB should be within 3% of GA. 5. Calculate the first stage gain error (in relative terms) EG1 = GB/GA − 1. 6. Calculate the error (in the number of the first stage gain codes) CEG1 = EG1/0.00370. 7. Set the first stage gain code to CG1 − CEG1. 8. Measure the gain, GC. GC should be closer to GA than to GB. 9. Calculate the error (in relative terms) EG2 = GC/GA − 1. 10. Calculate the error (in the number of the first stage gain codes) CEG2 = EG2/0.00370. 11. Set the first stage gain code to CG1 − CEG1 − CEG2. The resulting gain should be within one code of GA. Finally, determine the desired output offset: 1. Determine the desired output offset OA (using the measurements obtained from the simulation). 2. Use Equation 2 to set the output offset code CO1 such that the output offset is nominally OA. 3. Measure the output offset, OB. OB should be within 3% of OA. 4. Calculate the error (in relative terms) EO1 = OB/OA − 1. 5. Calculate the error (in the number of the output offset codes) CEO1 = EO1/0.00392. 6. Set the output offset code to CO1 − CEO1. 7. Measure the output offset, OC. OC should be closer to OA than to OB. 8. Calculate the error (in relative terms) EO2 = OC/OA − 1. 9. Calculate the error (in the number of the output offset codes) CEO2 = EO2/0.00392. 10. Set the output offset code to CO1 − CEO1 − CEO2. The resulting offset should be within one code of OA. Rev. B | Page 24 of 27 |
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