DocumentCode :
2284759
Title :
Remote non-destructive monitoring of thermophysical properties using flash technique
Author :
Troitsky, Oleg Yu. ; Reiss, Harald
Author_Institution :
Institute of Non-Destructive Testing at Tomsk Polytechnic University, 30, Lenin av., Tomsk, 634050, Russia
fYear :
2012
fDate :
18-21 Sept. 2012
Firstpage :
1
Lastpage :
3
Abstract :
The flash method for measuring thermophysical properties (TPP) has attracted wide-spread interest since it was introduced by Parker et al (1961). In an extension of this technique, we introduced a front-face flash-monitoring method (FFFMM) in which a radiative source delivering short heat pulses and an infrared detector to measure temperature excursion with time are positioned on the same side of an investigated object. In principle, front-face methods are more interesting than their rear-face alternatives because of the high signal-to-noise ratio. Moreover, front-face methods like the FFFMM are of vital importance in practice, e.g. when the rear side of the sample is inaccessible so that conventional transmission techniques cannot be applied. Time resolved thermograms allow depth profiling of the TPP of the sample using a dimensionless criterion of thermal homogeneity (DCTH), as described in our numerous reports. We showed that FFFMM can be applied virtually to thin films, coatings, layered materials, anisotropic materials and even to highly excited nuclear matter. Moreover, use of the DCTH gave us the possibility to exclude the influence of heat losses, of heat pulse duration, and of the depth of absorption of the applied heat pulse on the obtained TPP.
Keywords :
absorption; coatings; computerised monitoring; condition monitoring; heat losses; infrared detectors; infrared imaging; nondestructive testing; temperature measurement; thin films; DCTH; FFFMM; TPP; absorption depth; anisotropic materials; coatings; depth profiling; dimensionless criterion of thermal homogeneity; flash technique; front-face flash monitoring method; heat losses; heat pulse duration; highly excited nuclear matter; infrared detector; layered materials; radiative source; remote nondestructive monitoring; short heat pulses; signal-to-noise ratio; temperature excursion measurement; thermophysical property measurement; thin films; time resolved thermograms; Coatings; Equations; Heating; Materials; Mathematical model; Temperature measurement; Time measurement; coatings; films; flash method; layered materials; remote sensing; thermophysical properties;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Strategic Technology (IFOST), 2012 7th International Forum on
Conference_Location :
Tomsk
Print_ISBN :
978-1-4673-1772-6
Type :
conf
DOI :
10.1109/IFOST.2012.6357706
Filename :
6357706
Link To Document :
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