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INA253 Datasheet(PDF) 17 Page - Texas Instruments

Part # INA253
Description  INA253 High Voltage, Bidirectional, Zero-Drift, Current-Shunt Monitor With Integrated, 2-mΩ, Precision, Low Inductive Shunt Resistor
PDF  36 Pages
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Manufacturer  TI2 [Texas Instruments]
Direct Link  https://www.ti.com
Logo TI2 - Texas Instruments

INA253 Datasheet(HTML) 17 Page - Texas Instruments

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+
±
REF2
REF1
VS
GND
OUT
PWM
Rejection
IS+
IS±
IN+
IN±
SH+
SH±
2 m
0.1%
50 k
50 k
+
±
REF2
REF1
VS
GND
OUT
PWM
Rejection
IS+
IS±
IN+
IN±
SH+
SH±
2 m
0.1%
50 k
50 k
REF5025
2.5-V
Reference
17
INA253
www.ti.com
SLOS954A – JULY 2018 – REVISED DECEMBER 2018
Product Folder Links: INA253
Submit Documentation Feedback
Copyright © 2018, Texas Instruments Incorporated
Device Functional Modes (continued)
8.4.4 Reference Pin Connections for Bidirectional Current Measurements
Bidirectional operation allows the INA253 to measure currents through a resistive shunt in two directions. For this
case, set the output voltage anywhere within the reference input limits. A common configuration is to set the
reference inputs at half-scale for equal range in both directions. However, the reference inputs can be set to a
voltage other than half-scale when the bidirectional current is nonsymmetrical.
8.4.4.1 Output Set to External Reference Voltage
Connecting both pins together and then to a reference voltage results in an output voltage equal to the reference
voltage for the condition of shorted input pins or a 0-V differential input. Figure 35 shows this configuration. The
output voltage decreases below the reference voltage when the IN+ pin is negative relative to the IN– pin, and
increases when the IN+ pin is positive relative to the IN– pin. This technique is the most accurate way to bias the
output to a precise voltage.
Figure 35. External Reference Output
8.4.5 Output Set to Mid-Supply Voltage
Figure 36 shows that by connecting one reference pin to VS and the other to the GND pin, the output is set at
half of the supply when there is no differential input. This method creates a ratiometric offset to the supply
voltage, where the output voltage remains at VS / 2 when 0 V is applied between the IN+ and IN– inputs.
Figure 36. Mid-Supply Voltage Output



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