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INA293 Datasheet(PDF) 12 Page - Texas Instruments

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Part # INA293
Description  INA293 –4-V to 110-V, 1-MHz, High-Precision Current Sense Amplifier
PDF  30 Pages
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Manufacturer  TI1 [Texas Instruments]
Direct Link  http://www.ti.com
Logo TI1 - Texas Instruments

INA293 Datasheet(HTML) 12 Page - Texas Instruments

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IN+
IN±
OUT
-
+
Buffer
Current
Feedback
VS
GND
RL
R1
R1
Bias
Load
RSENSE
ISENSE
Load
Supply
12
INA293
SBOS470 – DECEMBER 2019
www.ti.com
Product Folder Links: INA293
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Copyright © 2019, Texas Instruments Incorporated
7 Detailed Description
7.1 Overview
The INA293 is a high or low side current-sense amplifier that offers a wide common-mode range, precision zero-
drift topology, excellent common-mode rejection ratio (CMRR), high bandwidth and fast slew rate. Different gain
versions are available to optimize the output dynamic range based on the application. The INA293 is designed
using a transconductance architecture with a current-feedback amplifier that enables low bias currents of 20 µA
with a common-mode voltage of 110 V.
7.2 Functional Block Diagram
7.3 Feature Description
7.3.1 Amplifier Input Common-Mode Signal
The INA293 supports large input common-mode voltages from –4 V to +110 V. Because of the internal topology,
the common-mode range is not restricted by the power-supply voltage (VS). This allows for the INA293 to be
used for both low and high side current-sensing applications.
7.3.1.1 Input-Signal Bandwidth
The INA293 –3-dB bandwidth is gain dependent, with several gain options of 20 V/V, 50 V/V, 100 V/V, 200 V/V,
and 500 V/V. The unique multistage design enables the amplifier to achieve high bandwidth at all gains. This
high bandwidth provides the throughput and fast response that is required for the rapid detection and processing
of overcurrent events.
The bandwidth of the device also depends on the applied Vsense voltage. Figure 35 shows the bandwidth
performance profile of the device over frequency as output voltage increases for each gain variation. As shown in
the figure, the device exhibits the highest bandwidth with higher Vsense voltages, and the bandwidth is higher
with lower device gain options. Individual requirements determine the acceptable limits of error for high frequency
current-sensing applications. Testing and evaluation in the end application or circuit is required to determine the
acceptance criteria, and to validate that the performance levels meet the system specifications.



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