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ADC912AFP Datasheet(PDF) 10 Page - Analog Devices |
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ADC912AFP Datasheet(HTML) 10 Page - Analog Devices |
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10 / 16 page ![]() REV. B ADC912A –10– BIPOLAR ANALOG INPUT OPERATION Bipolar analog input operation is achieved with an external amplifier providing an analog offset. Figures 17 and 18 show two circuit topologies that result in different digital-output cod- ing. In Figure 17, offset binary coding is produced when the external amplifier is connected in the inverting mode. Figure 19 shows the ideal transfer characteristics for both the inverting and noninverting configurations given in Figures 17 and 18. AGND VREFIN AIN 0.1 F 10 F 1 2 –5V R2 R1 R3 R4 RFS RZ VIN 3 R1 = R2 = 20k SEE TABLE II FOR VALUES OF R3, R4, RZ, AND RFS A1: OP27 LOWEST NOISE, OP42 BEST BANDWIDTH *EXTRA PINS OMITTED FOR CLARITY ADC912A* A1 Figure 17. Noninverting Bipolar Analog Input Operation The scaling resistors chosen in bipolar input applications should be from the same manufacturer to obtain good resistor tracking performance over temperature. When potentiometers are used for absolute adjustment, 0.1% tolerance resistors should still be used as shown in Figures 17 and 18 to minimize temperature coefficient errors. –5V 0.1 F 10 F 2 3 AGND VREFIN AIN VIN 1 R1 R2 R3 RFS RZ SEE TABLE III FOR VALUES OF R1, R2, R3, R4, RZ, AND RFS A1: OP27 LOWEST NOISE, OP42 BEST BANDWIDTH *EXTRA PINS OMITTED FOR CLARITY ADC912A* + A1 Figure 18. Inverting Bipolar Analog Input Calibration of the bipolar analog input circuits (Figures 17 and 18) should begin with zero adjustment first. Apply a +1/2 LSB analog input to AIN, (see Tables II and III) and adjust RZ until the successive digital output codes flicker between the following codes: For noninverting, Figure 17 1000 0000 0000 1000 0000 0001 For inverting, Figure 18 0111 1111 1111 0111 1111 1110 Next, adjust full scale by applying a FS–3/2 LSB analog input to AIN, (see Tables II and III) and adjust RFS until the successive digital output codes flicker between the following codes: For Noninverting, Figure 17 1111 1111 1110 1111 1111 1111 For Inverting, Figure 18 0000 0000 0001 0000 0000 0000 Table II. Resistor and Potentiometer Values Required for Figure 17 VIN Range R3 R4 RZ RFS 1/2 LSB FS/2–3/2 LSB Vk k k k mV V ±2.5 0 40.2 0.5 0.5 0.61 2.49817 ±5.0 20.0 19.8 0.5 1.0 1.22 4.99634 ±10.0 29.8 10.0 0.5 0.5 2.44 9.99268 Table III. Resistor and Potentiometer Values Required for Figure 18 VIN Range R1 R2 R3 RZ RFS 1/2 LSB FS/2–3/2 LSB Vk k k k k mV V ±2.5 20.0 41.2 40.2 2 1 0.61 2.49817 ±5.0 20.0 20.5 20.0 1 1 1.22 4.99634 ±10.0 20.0 10.5 10.2 0.5 1 2.44 9.99268 111...110 100...000 111...111 100...001 011...111 011...110 000...001 000...000 DIGITAL OUTPUT 0V FS 2 – FS 2 + INVERTING FIGURE 18 VIN – Input Voltage FS 2 + – 1LSB NON- INVERTING FIGURE 17 Figure 19. Ideal Input/Output Transfer Characteristics for Bipolar Input Circuits |
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