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AD5372BCPZ датащи(PDF) 15 Page - Analog Devices |
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AD5372BCPZ датащи(HTML) 15 Page - Analog Devices |
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15 / 25 page ![]() Preliminary Technical Data AD5372/AD5373 Rev. P rF | Page 15 of 25 gain required on the full output signal range. 3. Calculate the new maximum output range on VOUT including the expected maximum offset and gain errors. 4. Choose the new required VOUTmax and VOUTmin, keeping the VOUT limits centered on the nominal values. Note that VDD and VSS must provide sufficient headroom. 5. Calculate the value of VREF as follows: VREF = (VOUTMAX – VOUTMIN)/4 Reference Selection Example Nominal Output Range = 12V (-4V to +8V) Offset Error = ±70mV Gain Error = ±3% SIGGND = AGND = 0V 1) Gain Error = ±3% => Maximum Positive Gain Error = +3% => Output Range incl. Gain Error = 12 + 0.03(12)=12.36V 2) Offset Error = ±70mV => Maximum Offset Error Span = 2(70mV)=0.14V => Output Range including Gain Error and Offset Error = 12.36V + 0.14V = 12.5V 3) VREF Calculation Actual Output Range = 12.5V, that is -4.25V to +8.25V (centered); VREF = (8.25V + 4.25V)/4 = 3.125V If the solution yields an inconvenient reference level, the user can adopt one of the following approaches: 1. Use a resistor divider to divide down a convenient, higher reference level to the required level. 2. Select a convenient reference level above VREF and modify the Gain and Offset registers to digitally downsize the reference. In this way the user can use almost any convenient reference level but may reduce the performance by overcompaction of the transfer function. 3. Use a combination of these two approaches CALIBRATION The user can perform a system calibration on the AD5372 and AD5373 to reduce gain and offset errors to below 1 LSB. This is achieved by calculating new values for the M and C registers and reprogramming them. Reducing Zero-scale and Full-scale Error Zero-scale error can be reduced as follows: 1. Set the output to the lowest possible value. 2. Measure the actual output voltage and compare it with the required value. This gives the zero-scale error. 3. Calculate the number of LSBs equivalent to the error and subtract this from the default value of the C register. Note that only negative zero-scale error can be reduced. Full-scale error can be reduced as follows: 1. Measure the zero-scale error. 2. Set the output to the highest possible value. 3. Measure the actual output voltage and compare it with the required value. Add this error to the zero-scale error. This is the full-scale error. 4. Calculate the number of LSBs equivalent to the full-scale error and subtract it from the default value of the M register. Note that only positive full-scale error can be reduced. 5. The M and C registers should not be programmed until both zero-scale and full-scale errors have been calculated. AD5372 CALIBRATION EXAMPLE This example assumes that a −4 V to +8 V output is required. The DAC output is set to −4 V but measured at −4.03 V. This gives an zero-scale error of −30 mV. 1. 1 LSB = 12 V/65536 = 183.105 µV 2. 30 mV = 164 LSB 3. 164 LSB should be added to the default C register value: (32768 + 164) = 32932 4. 32932 should be programmed to the C register The full-scale error can now be removed. The output is set to +8 V and a value of +8.02 V is measured. The full-scale error is +20 mV – (–30 mV) = +50 mV This is a full-scale error of +50 mV. 1. 50 mV = 273 LSBs 2. 273 LSB should be subtracted from the default M register value: (65535 − 273) = 65262 3. 65262 should be programmed to the M register |
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