DocumentCode :
278104
Title :
Application of image analysis techniques and numerical modelling to analyse transient thermographic data
Author :
Lau, S.K. ; Almond, D.P. ; Patel, P.M.
Author_Institution :
Sch. of Mater. Sci., Bath Univ., UK
fYear :
1991
fDate :
33324
Firstpage :
42583
Lastpage :
42585
Abstract :
A quantitative image analysis study of the defect imaging response of pulsed video thermography (PVT) has been presented. A dedicated numerical finite difference model has been developed that truly computes the complex 3-dimensional heat flow around a circular subsurface defect. The accuracy and validity of the numerical computations have been checked and found to agree with the simple 1-dimensional thermal wave theory in the appropriate limit. The numerical analysis presented has further supported the authors´ earlier analysis of the defect imaging process of PVT based on a simple finite defect first order thermal wave theory. The discrepancies between the experimental PVT data and the model prediction at long times (after contrast peak) are thought to be contributed by the actual geometric shapes and sizes of the defects. Corrosion products could have accumulated around the edge and interior of the defects within the mild steel test piece. This effectively shortened the thermal diffusion path of the long wavelength longtime components across the defect, hence diminishing the image contrast
Keywords :
computerised picture processing; difference equations; flaw detection; infrared imaging; nondestructive testing; 1-dimensional thermal wave theory; NDT; circular subsurface defect; complex 3-dimensional heat flow; computerised image analysis; defect imaging response; image contrast; numerical finite difference model; pulsed video thermography; quantitative NDE; quantitative image analysis; transient thermographic data;
fLanguage :
English
Publisher :
iet
Conference_Titel :
Measurements, Modelling and Imaging for Non-Destructive Testing, IEE Colloquium on
Conference_Location :
London
Type :
conf
Filename :
181222
Link To Document :
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