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INA232 Scheda tecnica(PDF) 29 Page - Texas Instruments |
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INA232 Scheda tecnica(HTML) 29 Page - Texas Instruments |
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29 / 39 page ![]() 8.0 mΩ, which give a shunt voltage limit of 72 mV. Once the shunt voltage limit is known, the value for the shunt over voltage limit register is calculated by dividing the shunt voltage limit by the shunt voltage LSB size. For this case, the calculated value of the alert limit register is 72 mV / 2.5 μV = 28800d (7080h) . Values stored in the alert limit register are set to the default values after VS power cycle events and need to be reprogrammed each time power is applied. 8.2.2.5 Calculate Returned Values Table 8-4 below shows the register values assuming the design requirements shown in Table 8-3. User programmed values for the Configuration, Calibration, Mask/Enable and Alert limit registers are shown, as well as, the returned values for shunt voltage, current, bus voltage and power. Parametric values are calculated by multiplying the returned value by the LSB value. Table 8-4. Calculate Returned Values Register Contents LSB Value Calculated Value Configuration (0h) 16679d (4127h) — — Calibration (5h) 1280d (500h) — — Mask/Enable (6h) 32768 (8000h) — — Alert Limit (7h) 28800d (7080h) 2.5 μV/LSB 28800 × 2.5 μV = 0.072 V Shunt Voltage (1h) 19200d (4B00h) 2.5 µV/LSB 19200 × 2.5 μV = 0.048 V Bus Voltage (2h) 7500d (1D4Ch) 1.6 mV/LSB 7500 × 1.6 mV = 12 V Current (4h) 12000d (2EE0h) 500 µA/LSB 12000 × 500 µA = 6 A Power (3h) 4500d (1194h) Current LSB x 32 = 16 mW/LSB 4500 × 16 mW = 72 W Shunt Voltage and Current return values in two's complement format. In two's complement format a negative value in binary is represented by having a 1 in the most significant bit of the returned value. These values can be converted to decimal by first inverting all the bits and adding 1 to obtain the unsigned binary value. This value should then be converted to decimal with the negative sign applied. 8.2.3 Application Curves Figure 8-3 shows the ALERT pin response to a shunt overvoltage limit of 72 mV for a conversion time (tCT) of 140 µs and averaging set to 1. Figure 8-4 shows the response for the same limit but with the conversion time increased to 1.1 ms. For the scope shots shown in these figures, persistence was enabled on the ALERT channel. Figure 8-3 and Figure 8-4 show how the ALERT response time can vary depending on when the fault condition occurs relative to the internal ADC clock of the INA232. For fault conditions that are just exceeding the limit threshold, the response time for the ALERT pin can vary from one to two conversion cycles. As mentioned previously, the variation is because of the timing on when the fault event occurs relative to the start time of the internal ADC conversion cycle. For fault events that greatly exceed the limit threshold, the alert can respond in less than one conversion cycle. TIME (50 µs / div) LIMIT: 72 mV ~140 µs (1 conversion) < 280 µs (2 conversions) Figure 8-3. Alert Response (tCT = 140 µs) TIME (500 µs / div) LIMIT: 72 mV 1000 µs (~1 conversion) < 2200 µs (2 conversions) Figure 8-4. Alert Response (tCT = 1.1 ms) www.ti.com INA232 SBOSAA2 – DECEMBER 2022 Copyright © 2022 Texas Instruments Incorporated Submit Document Feedback 29 Product Folder Links: INA232 |
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