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Temperature control by microwave radiometry with narrow bandwidth*

Published online by Cambridge University Press:  15 January 2000

L. Dubois*
Affiliation:
Département Hyperfréquences et Semi-Conducteurs, IEMN (UMR CNRS 8520), avenue Poincaré, B.P. 69, Cité Scientifique, 59652 Villeneuve d'Ascq Cedex, France
C. Vanoverschelde
Affiliation:
Département Hyperfréquences et Semi-Conducteurs, IEMN (UMR CNRS 8520), avenue Poincaré, B.P. 69, Cité Scientifique, 59652 Villeneuve d'Ascq Cedex, France
V. Thomy
Affiliation:
Département Hyperfréquences et Semi-Conducteurs, IEMN (UMR CNRS 8520), avenue Poincaré, B.P. 69, Cité Scientifique, 59652 Villeneuve d'Ascq Cedex, France
J.-P. Sozanski
Affiliation:
Département Hyperfréquences et Semi-Conducteurs, IEMN (UMR CNRS 8520), avenue Poincaré, B.P. 69, Cité Scientifique, 59652 Villeneuve d'Ascq Cedex, France
M. Chivé
Affiliation:
Département Hyperfréquences et Semi-Conducteurs, IEMN (UMR CNRS 8520), avenue Poincaré, B.P. 69, Cité Scientifique, 59652 Villeneuve d'Ascq Cedex, France
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Abstract

Temperature is an important parameter for industrial process control. With the usual methods we obtain only an invasive or superficial information about temperature. Microwave radiometry is a non-invasive way to determine the temperature within dissipative body. This paper presents the design of a new radiometer. With this system, the radiometric temperature is independent of the reflection coefficient of the sensor. A simplified calibration takes into account insertion losses of the microwave elements and the frequency bandwidth has been greatly reduced to eliminate the unwanted electromagnetic noise.

Keywords

Type
Research Article
Copyright
© EDP Sciences, 2000

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Footnotes

*

This subject was presented at C21′98 at Cachan the November 18-19, 1998.

References

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