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TMP01 Datasheet(PDF) 15 Page - Analog Devices |
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TMP01 Datasheet(HTML) 15 Page - Analog Devices |
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15 / 16 page ![]() TMP01 REV. C –15– Translating 5 mV/K to 10 mV/ °C A useful circuit is shown in Figure 23 that translates the VPTAT output voltage, which is calibrated in Kelvins, into an output that can be read directly in degrees Celsius on a voltmeter display. To accomplish this, an external amplifier is configured as a differential amplifier. The resistors are scaled so the VREF voltage will exactly cancel the VPTAT voltage at 0.0 °C. 5 1 +15V –15V 10pF V OUT (10mV/ °C) (V OUT = 0.0V @ T = 0.0 °C) 487 Ω 7 6 4 3 2 OP177 100k Ω 100k Ω 4.12k Ω VPTAT VREF TMP01 4.22k Ω 105k Ω Figure 23. Translating 5 mV/K to 10 mV/ °C However, the gain from VPTAT to the output is two, so that 5 mV/K becomes 10 mV/ °C. Thus, for a temperature of +80°C, the output voltage is 800 mV. Circuit errors will be due prima- rily to the inaccuracies of the resistor values. Using 1% resistors the observed error was less than 10 mV, or 1 °C. The 10 pF feedback capacitor helps to ensure against oscillations. For bet- ter accuracy, a adjustment potentiometer can be added in series with either 100 k Ω resistor. Translating VPTAT to the Fahrenheit Scale A very similar circuit to the one shown in Figure 23 can be used to translate VPTAT into an output that can be read directly in degrees Fahrenheit, with a scaling of 10 mV/ °F. Only unity gain or less is available from the first stage differentiating circuit, so the second amplifier provides a gain of two to complete the con- version to the Fahrenheit scale. Using the circuit in Figure 24, a temperature of 0.0 °F gives an output of 0.00 V. At room tem- perature (70 °F) the output voltage is 700 mV. A –40°C to +85 °C operating range translates into –40°F to +185°F. The errors are essentially the same as for the circuit in Figure 23. V OUT = 0.0V @ T = 0.0 °F (10mV/ °F) 5 1 +15V –15V 10pF 121 Ω 7 6 4 3 2 1/2 OP297 100k Ω 100k Ω 6.49k Ω VPTAT VREF TMP01 1.0k Ω 90.9k Ω 100k Ω 7 6 5 1/2 OP297 100k Ω Figure 24. Translating 5 mV/K to 10 mV/ °F |
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