DocumentCode :
2109419
Title :
Johnson noise thermometry for harsh environments
Author :
Kisner, R. ; Britton, C.L. ; Jagadish, U. ; Wilgen, J.B. ; Roberts, M. ; Blalock, T.V. ; Holcomb, D. ; Bobrek, M. ; Ericson, M.N.
Author_Institution :
Oak Ridge Nat. Lab., TN, USA
Volume :
4
fYear :
2004
fDate :
13-13 March 2004
Firstpage :
2586
Abstract :
The technology of temperature measurement appears to some to be a mature field. However, to many, requirements for improved performance and reliability are a driver for continual scientific and technology advancement. Although Johnson noise has been proposed as a thermometry method for several decades, it is only recently that digital and analog electronics have made it possible to economically fabricate measurement systems based on Johnson noise. Johnson noise, which is a result of fundamental physics, is caused by the random thermal motions of electrons in all conductors. Its fundamental nature allows us to construct temperature measurement systems that do not require periodic calibration. Thus long, unattended operating intervals are feasible. Several unique implementations of Johnson noise thermometry (JNT) are possible. One permits temperature measurement without contacting the measured surface nductive JNT. Another implementation measures the Johnson noise of a resistance element in contact with the measured surface - conductive JNT. The resistive element in conductive JNT can be an RTD. Apparatus have been recently fabricated demonstrating the practicality of both JNT implementations. A demonstration of conductive JNT is planned at a nuclear facility within two years. We present new hardware implementations that allow real-time calibration of the signals that have the potential of allowing a fully-integrated, physically small and robust system to be achieved.
Keywords :
aerospace instrumentation; fission reactor instrumentation; space vehicle power plants; temperature measurement; thermal noise; thermometers; RTD; analog electronics; conductive Johnson noise thermometry; digital electronics; electrons thermal motion; hardware implementations; harsh environments; inductive Johnson noise thermometry; nuclear facility; real time calibration; reliability; resistance element; robust system; temperature measurement system; thermometry method; Calibration; Conductivity measurement; Driver circuits; Electrical resistance measurement; Environmental economics; Noise measurement; Physics; Surface resistance; Temperature measurement; Working environment noise;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Aerospace Conference, 2004. Proceedings. 2004 IEEE
Conference_Location :
Big Sky, MT
ISSN :
1095-323X
Print_ISBN :
0-7803-8155-6
Type :
conf
DOI :
10.1109/AERO.2004.1368053
Filename :
1368053
Link To Document :
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