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Resistance Thermometer
Ed

Nilikha ni

Ed

26. Agosto 2026FI
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Resistance Thermometer

A thermocouple gives you a difference and a couple of degrees of accuracy. When Hugh Callendar published his work on platinum resistance thermometry in 1887, he gave the world something better: metal's electrical resistance rises with temperature in a way that is smooth, repeatable and — for platinum especially — stable for decades. Measure the resistance and you have the temperature absolutely, with no reference junction needed. The catch is that the change is small and the measuring wires have resistance of their own, so a naive two-wire measurement includes the cable in the reading. The elegant answer is the Wheatstone bridge, and the three- and four-wire arrangements built on it. Platinum resistance thermometers still define the international temperature scale over most of its range.
Katamtaman
4 hours

Mga Tagubilin

1

Wind a sensing element and measure its coefficient

A length of fine wire whose resistance you can watch change.

  1. Wind about two metres of fine enamelled copper wire onto a small ceramic or glass former, non-inductively if you can.
  2. Measure its resistance at room temperature with a four-wire meter or a bridge.
  3. Immerse it in melting ice and measure again.
  4. Immerse it in boiling water and measure again.
  5. Compute the change per degree as a fraction of the resistance at 0 °C.

Copper's resistance changes by roughly 0.4 per cent per degree. That sounds large until you realise a 100 ohm element changes by only 0.4 ohms per degree — comparable to the resistance of a few metres of connecting cable. The smallness of the signal relative to the wiring is the entire engineering problem of resistance thermometry.

Wind it non-inductively — fold the wire double and wind the pair together — so the element does not act as a coil. It matters when the element is used in an environment with changing magnetic fields, and it costs nothing to do.

Mga materyales para sa hakbang na ito:

Kawad na Tanso na May EnamelKawad na Tanso na May Enamel1 rolyo
Tubong retorta na seramiko (luwad na matibay sa apoy)Tubong retorta na seramiko (luwad na matibay sa apoy)1 piraso
Papel na GrapPapel na Grap1 pad

Mga kailangang kasangkapan:

Digital na Multimetro na Pang-laboratoryoDigital na Multimetro na Pang-laboratoryo
Termometro sa PaglulutoTermometro sa Pagluluto
Digital na Kalibrador 6 PulgadaDigital na Kalibrador 6 Pulgada
2

Build a Wheatstone bridge around it

The bridge turns a small resistance change into a readable voltage.

  1. Build the classic four-arm bridge: your sensing element in one arm, three fixed resistors in the others.
  2. Choose the fixed resistors to equal the element's resistance at 0 °C.
  3. Power the bridge from a low, stable voltage.
  4. Measure across the bridge's midpoints with the multimeter.
  5. Adjust one arm until the output is zero at 0 °C — this is balancing the bridge.

The bridge measures a DIFFERENCE from a reference, not an absolute value. That is what gives it sensitivity: instead of trying to detect a 0.4 ohm change in 100 ohms with a meter, you null out the 100 ohms entirely and measure only what is left. The technique is Wheatstone's, published in 1843, and it turns up again at the end of this batch measuring strain rather than temperature.

Use a low excitation voltage. Current through the sensing element heats it, and a sensor that warms itself reports its own dissipation as process temperature — self-heating error, and it is easy to create and hard to notice.

Mga materyales para sa hakbang na ito:

Kit ng Risistor na 1/4 WKit ng Risistor na 1/4 W1 kit
Mababagong Pinagkukunan ng Kuryente sa MesaMababagong Pinagkukunan ng Kuryente sa Mesa1 piraso

Mga kailangang kasangkapan:

Digital na Multimetro na Pang-laboratoryoDigital na Multimetro na Pang-laboratoryo
Analog na MultimeterAnalog na Multimeter
Digital na Kalibrador 6 PulgadaDigital na Kalibrador 6 Pulgada
3

Prove that the cable is in your reading

The classic two-wire error, demonstrated deliberately.

  1. Connect the element with short leads and record the indicated temperature.
  2. Now insert ten metres of the same wire in each lead, without changing anything else.
  3. Record the indicated temperature again.
  4. Warm the long cable — not the sensor — with a hair dryer and watch the reading change.
The reading shifts, and it shifts again when only the CABLE is heated. In two-wire connection the lead resistance is added to the sensor's and is indistinguishable from it. This is why industrial resistance thermometers are wired with three or four wires: the extra conductors let the instrument measure the lead resistance separately and subtract it. That is the difference between an instrument that works on the bench and one that works at the end of a long run in a plant.

Mga materyales para sa hakbang na ito:

Kawad na TansoKawad na Tanso1 rolyo

Mga kailangang kasangkapan:

Digital na Multimetro na Pang-laboratoryoDigital na Multimetro na Pang-laboratoryo
Panukat ng OrasPanukat ng Oras
Termometro sa PaglulutoTermometro sa Pagluluto
4

Compare directly against the thermocouple

Two sensors, one bath, and the differences are exactly the selection criteria.

  1. Put your resistance element and your thermocouple in the same water bath.
  2. Heat the bath slowly and record both readings every 30 seconds.
  3. Plot both against time.
  4. Now plunge both into hot water from cold and record how quickly each settles.
  5. Leave both running for an hour at constant temperature and note any drift.
The resistance thermometer is steadier, more repeatable and more accurate; the thermocouple responds far faster and reaches temperatures the element cannot survive. Neither is better — the choice is accuracy and stability against speed and range, and that table you have just produced is exactly the one an engineer consults when specifying a sensor.

Mga materyales para sa hakbang na ito:

Papel na GrapPapel na Grap1 pad

Mga kailangang kasangkapan:

Digital na Multimetro na Pang-laboratoryoDigital na Multimetro na Pang-laboratoryo
Panukat ng OrasPanukat ng Oras
Termometro sa PaglulutoTermometro sa Pagluluto
5

Why platinum defines the scale, and history

Hugh Longbourne Callendar published his systematic work on platinum resistance thermometry in 1887, establishing both the practical instrument and the equation relating resistance to temperature. Earlier workers including William Siemens had proposed the principle; Callendar made it into a metrological standard.

Platinum is chosen for stability, not sensitivity. Copper and nickel both change resistance more per degree, which would seem better. Platinum wins because it does not oxidise, does not contaminate easily, can be made extremely pure and repeatably so, and behaves identically decade after decade. An instrument that is very sensitive but drifts is worse than one that is less sensitive and does not — and that trade recurs constantly in measurement.

It became the definition. The International Temperature Scale specifies the platinum resistance thermometer as the defining instrument across most of its range, calibrated at fixed points like the triple point of water. This is an unusual honour: not merely a good way to measure temperature, but the agreed embodiment of what the temperature scale IS between those fixed points.

Its honest limits: an upper temperature well below what thermocouples reach; slower response because the element has real mass; self-heating if excited too hard; and a sensitivity to lead resistance that forces three- or four-wire installation. For furnaces you use a thermocouple, for a laboratory bath you use platinum, and knowing why is the point of the comparison in step 4.

Mga Materyales

6

Mga Kinakailangang Kasangkapan

5

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