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AD8253 Datasheet(PDF) 23 Page - Analog Devices |
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AD8253 Datasheet(HTML) 23 Page - Analog Devices |
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23 / 34 page ![]() LTC6373 23 Rev. 0 For more information www.analog.com APPLICATIONS INFORMATION degrade the LTC6373’s inherent AC CMRR. To avoid any possibility of common mode to differential mode signal conversion, match the common mode filter frequencies (on positive and negative inputs of LTC6373) to 1% or better. Then the differential mode filter frequency can be set for the bandwidth of the signal to be processed in the application. Setting the differential mode filter frequency close to the sensor’s bandwidth also minimizes any noise pickup along the leads. If the sensor is an RTD or a resis- tive strain gauge in close proximity to the LTC6373, then the series resistors RS can be omitted. As an example, if the bandwidth of the signal of interest is 100kHz whereas the interference frequency is 10MHz and above, an appro- priate choice for differential mode filter (FilterFreqDIFF) and common mode filter (FilterFreqCM) frequencies could be 200kHz/4MHz. Assuming RS is chosen to be 1kΩ, using the formula provided earlier in this section results in CC = 39pF and CD = 390pF. Error Budget Analysis Figure 7 shows the LTC6373 in a typical application to buffer and amplify the differential output of a bridge trans- ducer. The LTC6373 is programmed to a gain of 8V/V in this example and amplifies a differential, full-scale (FS) voltage of 100mV = 0.1V at transducer’s output (or LTC6373’s input). Table 2 shows the error budget in this application, listing various error sources in parts per million (ppm) normalized to full-scale voltage (0.1V) and across the temperature range of 25°C to 85°C. The LTC6373 achieves superior performance compared to all other monolithic programmable-gain instrumenta- tion amplifiers (PGIA) in the market, enabling more accurate measurements. Figure 7. Precision Bridge Amplifier 6373 F07 + – LTC6373 V– V+ 15V 10k 10k 10V 10k 10k G = 8 –15V +OUT –OUT VOCM Table 2. Error Budget Analysis ERROR SOURCE CALCULATION ERROR, ppm OF INPUT FULL SCALE (FS) LTC6373 (G = 8) CLOSEST COMPETITOR PGIA (G = 8) LTC6373 (G = 8) CLOSEST COMPETITOR PGIA (G = 8) Absolute Accuracy at TA = 25°C Gain Error Offset Voltage (RTI) Input Offset Current CMRR 0.015% FS (104µV)/0.1V [(25pA)(10kΩ)/2]/0.1V [(5V)/(100dB)]/0.1V 0.05% FS (1500μV)/0.1V [(100pA)(10kΩ)/2]/0.1V [(5V)/(95dB)]/0.1V 150 1040 1 500 500 15000 5 889 Total Accuracy Error 1691 16394 Temperature Drift to 85°C Gain Drift Offset Voltage Drift (RTI) (1ppm/°C)(60°C) [(1.8µV/°C)(60°C)]/0.1V (10ppm/°C)(60°C) [(6μV/°C)(60°C)]/0.1V 60 1080 600 3600 Total Drift Error 1140 4200 Resolution Gain Nonlinearity Typ 0.1Hz to 10Hz Input Voltage Noise 3ppm (1.2µVP-P)/0.1V 20ppm (1µVP-P)/0.1V 3 12 20 10 Total Resolution Error 15 30 Grand Total Error 2846 20624 |
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