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AD8571 Datasheet(PDF) 21 Page - Analog Devices |
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AD8571 Datasheet(HTML) 21 Page - Analog Devices |
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21 / 28 page ![]() Data Sheet AD8571/AD8572/AD8574 Rev. F | Page 21 of 28 APPLICATIONS INFORMATION 5 V PRECISION STRAIN GAGE CIRCUIT The extremely low offset voltage of the AD8572 makes it an ideal amplifier for any application requiring accuracy with high gains, such as a weigh scale or strain gage. Figure 63 shows a configura- tion for a single-supply, precision strain gage measurement system. The REF192 provides a 2.5 V precision reference voltage for A2. The A2 amplifier boosts this voltage to provide a 4.0 V reference for the top of the strain gage resistor bridge. Q1 provides the current drive for the 350 Ω bridge network. A1 is used to amplify the output of the bridge with the full-scale output voltage equal to ( ) B R 2 R 1 R + × 2 (17) where RB is the resistance of the load cell. Using the values given in Figure 63, the output voltage linearly varies from 0 V with no strain to 4 V under full strain. VOUT AD8572-A R3 17.4kΩ R4 100Ω R1 17.4kΩ R2 100Ω 0V TO 4V NOTE: USE 0.1% TOLERANCE RESISTORS. 20kΩ A1 AD8572-B REF192 12kΩ 1k Ω 5V 2.5V 6 4 3 2 4.0V 40mV FULL-SCALE A2 350Ω LOAD CELL Q1 2N2222 OR EQUIVALENT Figure 63. 5 V Precision Strain Gage Amplifier 3 V INSTRUMENTATION AMPLIFIER The high common-mode rejection, high open-loop gain, and operation down to 3 V of the supply voltage make the AD8571/AD8572/AD8574 an excellent op amp choice for discrete single-supply instrumentation amplifiers. The common-mode rejection ratio of the AD8571/AD8572/ AD8574 is greater than 120 dB, but the CMRR of the system is also a function of the external resistor tolerances. The gain of the difference amplifier shown in Figure 64 is given as − + + = 1 R 2 R 2 V 2 R 1 R 4 R 3 R 4 R 1 V VOUT 1 (18) V2 V1 VOUT R1 R1 R1 R3 R4 R4 R3 R2 R2 R2 AD8571/ AD8572/ AD8574 IF = , THEN VOUT = (V1 – V2) Figure 64. Using the AD8571/AD8572/AD8574 as a Difference Amplifier In an ideal difference amplifier, the ratio of the resistors is set equal to 3 R 4 R 1 R 2 R AV = = (19) Set the output voltage of the system to VOUT = AV (V1 − V2) (20) Due to finite component tolerance, the ratio between the four resistors is not exactly equal, and any mismatch results in a reduction of common-mode rejection from the system. Referring to Figure 64, the exact common-mode rejection ratio can be expressed as R2R3 R1R4 R2R3 R2R4 1R4 R CMRR 2 2 2 − + + = (21) In the 3-op amp instrumentation amplifier configuration shown in Figure 65, the output difference amplifier is set to unity gain with all four resistors equal in value. If the tolerance of the resistors used in the circuit is given as δ, the worst-case CMRR of the instrumentation amplifier is δ = 2 1 MIN CMRR (22) VOUT R R R R AD8574-C V2 R R V1 RG AD8574-B AD8574-A RTRIM VOUT = 1 + 2R RG (V1 – V2) Figure 65. Discrete Instrumentation Amplifier Configuration Therefore, using 1% tolerance resistors results in a worst-case system CMRR of 0.02, or 34 dB. To achieve high common- mode rejection, either high precision resistors or an additional trimming resistor, as shown in Figure 65, should be used. The value of this trimming resistor should be equal to the value of R multiplied by its tolerance. For example, using 10 kΩ resistors with 1% tolerance would require a series trimming resistor equal to 100 Ω. |
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