DocumentCode :
1609715
Title :
Benchmark of residual stress for ultrasonic nondestructive testing
Author :
Wentao Song ; Qinxue Pan ; Chunguang Xu ; Xiao Li ; Haiyang Liu
Author_Institution :
Key Lab. of Fundamental Sci. for Adv. Machining, Beijing Inst. of Technol., Beijing, China
fYear :
2013
Firstpage :
73
Lastpage :
76
Abstract :
Based on acoustoelasticsticity theory, critically refracted longitudinal (LCR) wave was used to detect the residual stress in X70 steel. The method of fabrication and calibration for residual stress reference block was introduced and the detecting error brought by environmental temperature changes was corrected. The theoretical equation about the effect of temperature on residual stress detecting was analyzed. Low/high temperature test chambers and ultrasonic residual stress detecting equipment was used to detect the change of ultrasonic transit time difference, which caused by the temperature change. MATLAB second order polynomial was used to fit the experimental detecting results and fitted equation was obtained. The fitted equation was compensated to the system by software programming. The change of residual stress in reference block in two situations was compared. The results showed that temperature change had a large impact on the accuracy of ultrasonic residual stress detecting. The error of residual stress detecting can be effectively reduced by the temperature compensation modules. As result, the absolute precision of detection reaches ±10MPa.
Keywords :
benchmark testing; elastic deformation; elasticity; internal stresses; mathematics computing; polynomials; steel; ultrasonic materials testing; MATLAB second order polynomial; X70 steel; acoustoelasticity theory; critically refracted longitudinal wave; elastic deformation; fitted equation; low-high temperature test chamber; nondestructive ultrasonic testing; residual stress benchmark; residual stress reference block calibration; software programming; temperature effect; ultrasonic transit time difference; Acoustics; Equations; Materials; Residual stresses; Steel; Temperature distribution; reference block; residual stress; temperature; ultrasonic;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nondestructive Evaluation/Testing: New Technology & Application (FENDT), 2013 Far East Forum on
Conference_Location :
Jinan
Print_ISBN :
978-1-4673-6018-0
Type :
conf
DOI :
10.1109/FENDT.2013.6635532
Filename :
6635532
Link To Document :
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