DocumentCode :
988253
Title :
Signal Processing for Laser-Speckle Strain-Measurement Techniques
Author :
Schneider, Sebastian C. ; Rupitsch, Stefan J. ; Zagar, Bernhard G.
Author_Institution :
Patent Attornies Westphal, Mussgnug & Partners, Munich
Volume :
56
Issue :
6
fYear :
2007
Firstpage :
2681
Lastpage :
2687
Abstract :
Contactless and nondestructive material testing is of increasing interest in modern material sciences, where the measurement of the material properties of fibers and foils has become important in the development of new materials like composites, fiber bundles, or fiber-reinforced ceramics. However, strain measurement methods making use of laser speckle shifts induced by translation and deformation of the specimen turned out to be very useful when measuring stress-strain relations or thermal expansions of specimens to which strain gauges are not applicable, either due to the geometric dimensions of the specimen or for environmental conditions, e.g., high temperatures. Using laser-optical methods, one is confronted with the problem of calculating the speckle-pattern-shift values from a time series of images in the presence of the speckle decorrelation effects. In this paper, we give an overview of the most common methods and present a novel algorithm based on the maximum-likelihood principle, which yields sufficient accuracy for the common measurement tasks. Moreover, we show the application of two different optical strain-measurement setups used to measure mechanical and thermal strain.
Keywords :
elastic moduli; maximum likelihood estimation; measurement by laser beam; nondestructive testing; speckle; strain measurement; stress-strain relations; elastic modulus; fiber-reinforced ceramics; laser-optical methods; laser-speckle strain-measurement techniques; maximum-likelihood principle; mechanical strain measurement; nondestructive material testing; signal processing; speckle decorrelation effects; speckle-pattern-shift values; stress-strain relations; thermal expansions; thermal strain measurement; Composite materials; Fiber lasers; Laser modes; Laser theory; Materials testing; Optical fiber testing; Optical materials; Signal processing; Speckle; Strain measurement; Displacement estimation; elastic modulus; laser speckles; maximum likelihood (ML); thermal-strain measurement;
fLanguage :
English
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9456
Type :
jour
DOI :
10.1109/TIM.2007.908251
Filename :
4389142
Link To Document :
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