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INA253 Datasheet(PDF) 14 Page - Texas Instruments |
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INA253 Datasheet(HTML) 14 Page - Texas Instruments |
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14 / 36 page ![]() 1.99 1.995 2 2.005 ±50 ±25 0 25 50 75 100 125 150 Temperature ( ƒC) C030 14 INA253 SLOS954A – JULY 2018 – REVISED DECEMBER 2018 www.ti.com Product Folder Links: INA253 Submit Documentation Feedback Copyright © 2018, Texas Instruments Incorporated Feature Description (continued) 8.3.3 Temperature Stability System calibration is common for many industrial applications in order to eliminate initial component and system- level errors that can be present. A system-level calibration reduces the initial accuracy requirement for many of the individual components because the errors associated with these components are effectively eliminated through the calibration procedure. This calibration enables precise measurements at the temperature in which the system is calibrated. As the system temperature changes because of external ambient changes or self heating, measurement errors are reintroduced. Without accurate temperature compensation used in addition to the initial adjustment, the calibration procedure is not effective. The user must account for temperature-induced changes. One of the primary benefits of the low temperature coefficient of the INA253 (including both the integrated current-sensing resistor and current-sensing amplifier) is that the device measurement remains accurate, even when the temperature changes throughout the specified temperature range of the device. Figure 31 shows the drift performance for the integrated current-sensing resistor. Use Figure 31 to determine the typical variance in the shunt resistor value at various temperatures. As with any resistive element, the tolerance of the component varies when exposed to different temperature conditions. For the current-sensing resistor integrated in the INA253, the resistor does vary slightly more when operated in temperatures ranging from –40°C to 0°C than when operated from 0°C to 125°C. Even in the –40°C to 0°C temperature range, the drift is still low at 25 ppm/°C. Figure 31. Sensing Resistor vs Temperature An additional aspect to consider is that when current flows through the current-sensing resistor, power is dissipated across this component. This dissipated power results in an increase in the internal temperature of the package, including the integrated sensing resistor. This resistor self-heating effect results in an increase of the resistor temperature helping to move the component out of the colder, wider drift temperature region. 8.3.4 Enhanced PWM Rejection Operation The enhanced PWM rejection feature of the INA253 provides increased attenuation of large common-mode ΔV/Δt transients. Large ΔV/Δt common-mode transients associated with PWM signals are employed in applications such as motor or solenoid drive and switching power supplies. Traditionally, large ΔV/Δt common- mode transitions are handled strictly by increasing the amplifier signal bandwidth, which can increase chip size, complexity and ultimately cost. The INA253 is designed with high common-mode rejection techniques to reduce large ΔV/Δt transients before the system is disturbed as a result of these large signals. The high ac CMRR, in conjunction with signal bandwidth, allows the INA253 to provide minimal output transients and ringing compared with standard circuit approaches. |
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