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TMP6131DECR 数据表(PDF) 17 Page - Texas Instruments |
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TMP6131DECR 数据表(HTML) 17 Page - Texas Instruments |
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17 / 36 page ![]() Temperature (qC) -60 -40 -20 0 20 40 60 80 100 120 140 160 0 1 2 3 4 5 6 7 8 9 d013 IBIAS = 50 PA IBIAS = 100 PA IBIAS = 200 PA IBIAS = 300 PA IBIAS = 400 PA 17 TMP61 www.ti.com SBOS921C – DECEMBER 2018 – REVISED SEPTEMBER 2019 Product Folder Links: TMP61 Submit Documentation Feedback Copyright © 2018–2019, Texas Instruments Incorporated Typical Application (continued) The engineer can use a polynomial equation or a LUT to extract the temperature reading based on the ADC code read in the microcontroller. The cancellation of VBIAS is one benefit to using a voltage-divider (ratiometric approach), but the sensitivity of the output voltage of the divider circuit cannot increase much. Therefore, not all of the ADC codes will be used due to the small voltage output range compared to the FSR. This application is very common, however, and is simple to implement. The engineer can use a current source-based circuit, like the one shown in Figure 13, to have better control over the sensitivity of the output voltage and achieve higher accuracy. In this case, the output voltage is simply V = I × R. For example, if a current source of 400 µA is used with the TMP61, the output voltage will span approximately 5.5 V and will have a gain up to 40 mV/°C. Having control over the voltage range and sensitivity allows for full utilization of the ADC codes and full-scale range. Based on the bias current, the temperature voltage is shown in Figure 14. Similar to the ratiometric approach above, if the ADC has a built-in current source that shares the same bias as the reference voltage of the ADC, the tolerance of the supply current cancels out. In this case, a precision ADC is not required. This method yields the best accuracy, but can increase the system implementation cost. Figure 13. TMP61 Biasing Circuit With Current Source Figure 14. TMP61 Temperature Voltage With Varying Current Sources In comparison to the non-linear NTC thermistor in a voltage divider, the TMP61 has an enhanced linear output characteristic. The two voltage divider circuits with and without a linearization parallel resistor, RP, is shown in Figure 15. For example, consider an example where VBIAS = 5 V, RBIAS = 10 kΩ, and a parallel resistor (RP) is used with the NTC thermistor (RNTC) to linearize the output voltage with an additional 10-kΩ resistor. The output characteristics of the voltage dividers are shown in Figure 16. The TMP61 produces a linear curve across the entire temperature range while the NTC curve is only linear across a small temperature region. When the parallel resistor (RP) is added to the NTC circuit, the added resistor makes the curve much more linear, but greatly affects the output voltage range. |
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