Monday, May 12, 2014

The Principle Of Resistance Temperature Device

By Tracie Knight


There are different ways of measuring temperature depending on the circumstances. Resistance temperature device or RTD operates on the principle that changes in temperature alters the resistance of a conductor. An electric current is passed through a piece of metal which is used to indicate the reading. It works through correlation with another element whose reaction is known and standardized.

The most common metal for this purpose is platinum. It is widely used because it displays consistency over a wide range. The level of accuracy is incredible which makes it reliable for industrial processes. It has an incredible sensitivity that makes it preferable over the others.

Processing and manufacturing procedures are sensitive to heat. The speed of response is also important for any instrument used to monitor heat. This calls for careful study before selecting the metal to use. The signal to be sent to control towers allows effective monitoring to prevent compromise on the outcome.

The industries that benefit from this technology include manufacturers of appliances, automotive industry, control sections and HVAC. Production plants with measuring and testing units need to constantly monitor the temperatures. A higher level of consistency and accuracy is required to achieve desired results. Common metals for this purpose include copper, nickel and platinum.

The best element for use as a conductor must display consistency over a wide temperature range. Sensitivity to slight increment or reduction in the amount of heat is also important. The sensitivity of such processes as extraction means that the highest possible accuracy degree must be achieved. This prevents scenarios where the outcomes are compromised.

Exposure to heat causes varying reactions which is considered a limitation when using RTDs. Temperatures beyond 660 degrees Celsius have been known to damage the conductor or cause it to misbehave. Too much heat causes impurities to contaminate the conductor. They come from the sheath and affect measurement given.

Impurities found at boundaries and changing temperatures have a significant effect on the behavior of conductors in RTDs. This has been clearly noted when it is below 270 degrees or 3 Kelvin. The elements used have very few phonons which explains their behavior. This affects their sensitivity to slight changes in temperature.

Accuracy of the readings given by RTDs is sometimes compromised during conversion. The correlation factors that intervene in the process make calibration a huge challenge. This is a property that is likely to affect the fidelity of industrial processes.

Exposing conductors to continuous heat is likely to alter their properties. This leads to inconsistencies during a thermal cycle. This is defined as hysteresis and threatens to push RTDs out of some operations. It also affects their sensitivity thus limiting their use. The conductors, however, respond well to lower temperatures.

Heat is likely to be lost through the sheath and because of impurities that come into contact with conductors. The presence of foreign current is likely to affect the accuracy of reading given. Use of multiple wires is likely to affect the outcome. Metallic conductors used respond very slowly to changes during heating which is not appropriated for some sensitive operations.




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