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TMP01FP Datasheet(PDF) 13 Page - Analog Devices |
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TMP01FP Datasheet(HTML) 13 Page - Analog Devices |
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13 / 16 page ![]() TMP01 REV. C –13– 4 mA-20 mA Current Loop Another, very common method of transmitting a signal over long distances is to use a 4 mA-20 mA Loop, as shown in Fig- ure 19. An advantage of using a 4 mA-20 mA loop is that the accuracy of a current loop is not compromised by voltage drops across the line. One requirement of 4 mA-20 mA circuits is that the remote end must receive all of its power from the loop, meaning that the circuit must consume less than 4 mA. Operat- ing from +5 V, the quiescent current of the TMP01 is 500 µA max, and the OP90s is 20 µA max, totaling less than 4 mA. Although not shown, the open collector outputs and tempera- ture setting pins can be connected to do any local control of switching. The current is proportional to the voltage on the VPTAT out- put, and is calibrated to 4 mA at a temperature of –40 °C, to 20 mA for +85 °C. The main equation governing the operation of this circuit gives the current as a function of VPTAT: I OUT = 1 R6 VPTAT × R5 R2 – VREF × R3 R3 + R1 1 + R5 R2 The resulting temperature coefficient of the output current is 128 µA/°C. 5 8 1 4 R L 2N1711 VREF GND V+ VPTAT TMP01 R5 100k Ω R2 39.2k Ω 7 6 4 3 2 OP90 R1 243k Ω R3 100k Ω R6 100 Ω 4–20mA +5V TO +13.2V Figure 19. 4-20 mA Current Loop To determine the resistor values in this circuit, first note that VREF remains constant over temperature. Thus the ratio of R5 over R2 must give a variation of IOUT from 4 mA to 20 mA as VPTAT varies from 1.165 V at –40 °C to 1.79 V at +85°C. The absolute value of the resistors is not important, only the ratio. For convenience, 100 k Ω is chosen for R5. Once R2 is calcu- lated, the value of R3 and R1 is determined by substituting 4 mA for IOUT and 1.165 V for VPTAT and solving. The final values are shown in the circuit. The OP90 is chosen for this cir- cuit because of its ability to operate on a single supply and its high accuracy. For initial accuracy, a 10 k Ω trim potentiometer can be included in series with R3, and the value of R3 lowered to 95 k Ω. The potentiometer should be adjusted to produce an output current of 12.3 mA at 25 °C. Temperature-to-Frequency Converter Another common method of transmitting analog information is to convert a voltage to the frequency domain. This is easily done with any of the low cost monolithic Voltage-to-Frequency Converters (VFCs) available, which feature a robust, open-col- lector digital output. A digital signal is very immune to noise and voltage drops because the only important information is the frequency. As long as the conversions between temperature and frequency are done accurately, the temperature data can be suc- cessfully transmitted. A simple circuit to do this combines the TMP01 with an AD654 VFC, as shown in Figure 20. The AD654 outputs a square wave that is proportional to the dc input voltage accord- ing to the following equation: F OUT = V IN 10 (R1 + R2) C T By simply connecting the VPTAT output to the input of the AD654, the 5 mV/ °C temperature coefficient gives a sensitivity of 25 Hz/ °C, centered around 7.5 kHz at 25°C. The trimming resistor R2 is needed to calibrate the absolute accuracy of the AD654. For more information on that part, please consult the AD654 data sheet. Finally, the AD650 can be used to accu- rately convert the frequency back to a dc voltage on the receiv- ing end. 4 3 7 6 8 1 2 5 AD654 VPTAT V+ R1 R2 R3 TEMPERATURE SENSOR & VOLTAGE REFERENCE 1 2 3 4 HYSTERESIS GENERATOR WINDOW COMPARATOR TMP01 VPTAT VREF 7 8 5 6 R1 1.8k Ω OSC V+ F OUT C T 0.1 µF 5k Ω V+ R2 500 Ω Figure 20. Temperature-to-Frequency Converter |
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