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INA239 датащи(PDF) 33 Page - Texas Instruments

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номер детали INA239
подробное описание детали  INA239 85-V, 16-Bit, High-Precision Power Monitor With SPI Interface
PDF  44 Pages
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When setting the power over-limit value, the LSB size used to calculate the value needed in the limit registers
will be 256 times greater than the power LSB. This is because the power register is a 24 bits in length while the
power fault limit register is 16 bits.
Values stored in the alert limit registers 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
Parametric values are calculated by multiplying the returned value by the LSB value. Table 8-4 below shows the
returned values for this application example assuming the design requirements shown in Table 8-3.
Table 8-4. Calculating Returned Values
PARAMETER
Returned Value
LSB Value
Calculated Value
Shunt voltage (V)
19440d
5 µV/LSB
0.0972 V
Current (A)
19660d
10 A/215 = 305.176 µA/LSB
5.9997 A
Bus voltage (V)
15360d
3.125 mV/LSB
48 V
Power (W)
4718604d
Current LSB x 0.2 = 61.035156 µW/LSB
288 W
Temperature (°C)
200d
125 m°C/LSB
25°C
Shunt Voltage, Current, Bus Voltage (positive only), and Temperature 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. For
example, assume a shunt voltage reading returns 1011 0100 0001 0000. This is a negative value due to the
MSB having a value of one. Inverting the bits and adding one results in 0100 1011 1111 0000 (19440d) which
from the shunt voltage example in Table 8-4 correlates to a voltage of 97.2 mV. Since the returned value was
negative the measured shunt voltage value is -97.2 mV.
8.2.3 Application Curves
Figure 8-3 and Figure 8-4 show the ALERT pin response to a bus overvoltage fault with a conversion time of 50
μs, averaging set to 1, and the SLOWALERT bit set to 0 for bus only conversions. For these scope shots,
persistence was enabled on the ALERT channel to show the variation in the alert response for many sequential
fault events. If the magnitude of the fault is sufficient the ALERT response can be as fast as one quarter of the
ADC conversion time as shown in Figure 8-3. For fault conditions that are just exceeding the limit threshold, the
response time for the ALERT pin can vary from approximately 0.5 to 1.5 conversion cycles as shown in Figure
8-4. Variation in the alert response exists because the external fault event is not synchronized to the internal
ADC conversion start. Also the ADC is constantly sampling to get a result, so the response time for fault events
starting from zero will slower than fault events starting from values near the set fault threshold. Since the timing
of the alert can be difficult to predict, applications where the alert timing is critical should assume a alert
response equal to 1.5 times the ADC conversion time for bus voltage or shunt voltage only conversions.
www.ti.com
INA239
SLYS027 – JANUARY 2021
Copyright © 2021 Texas Instruments Incorporated
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