Stress evaluation of metallic material under steady state based on nonlinear critically refracted longitudinal wave
This paper presents the study of applying the nonlinear ultrasonic wave to evaluate the stress state of metallic materials under steady state. The pre-stress loading method is applied to guarantee components with steady stress. Three kinds of nonlinear ultrasonic experiments based on critically refr...
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doaj-acf2f33dbe6549d6a2770dd0e819a5e72020-11-24T21:12:03ZengElsevierResults in Physics2211-37972018-06-019665672Stress evaluation of metallic material under steady state based on nonlinear critically refracted longitudinal waveHanling Mao0Yuhua Zhang1Hanying Mao2Xinxin Li3Zhenfeng Huang4College of Mechanical Engineering, Guangxi University, Nanning 530004, ChinaInstitute of Light Industrial and Food Engineering, Guangxi University, Nanning 530004, China; Corresponding authors.College of Automobile and Transportation, Guangxi University of Science and Technology, Liuzhou 545006, China; Corresponding authors.College of Mechanical Engineering, Guangxi University, Nanning 530004, ChinaCollege of Mechanical Engineering, Guangxi University, Nanning 530004, ChinaThis paper presents the study of applying the nonlinear ultrasonic wave to evaluate the stress state of metallic materials under steady state. The pre-stress loading method is applied to guarantee components with steady stress. Three kinds of nonlinear ultrasonic experiments based on critically refracted longitudinal wave are conducted on components which the critically refracted longitudinal wave propagates along x, x1 and x2 direction. Experimental results indicate the second and third order relative nonlinear coefficients monotonically increase with stress, and the normalized relationship is consistent with simplified dislocation models, which indicates the experimental result is logical. The combined ultrasonic nonlinear parameter is proposed, and three stress evaluation models at x direction are established based on three ultrasonic nonlinear parameters, which the estimation error is below 5%. Then two stress detection models at x1 and x2 direction are built based on combined ultrasonic nonlinear parameter, the stress synthesis method is applied to calculate the magnitude and direction of principal stress. The results show the prediction error is within 5% and the angle deviation is within 1.5°. Therefore the nonlinear ultrasonic technique based on LCR wave could be applied to nondestructively evaluate the stress of metallic materials under steady state which the magnitude and direction are included. Keywords: Stress evaluation, Nonlinear ultrasonic, Critically refracted longitudinal wave, Combined ultrasonic nonlinear parameterhttp://www.sciencedirect.com/science/article/pii/S2211379718301608 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Hanling Mao Yuhua Zhang Hanying Mao Xinxin Li Zhenfeng Huang |
spellingShingle |
Hanling Mao Yuhua Zhang Hanying Mao Xinxin Li Zhenfeng Huang Stress evaluation of metallic material under steady state based on nonlinear critically refracted longitudinal wave Results in Physics |
author_facet |
Hanling Mao Yuhua Zhang Hanying Mao Xinxin Li Zhenfeng Huang |
author_sort |
Hanling Mao |
title |
Stress evaluation of metallic material under steady state based on nonlinear critically refracted longitudinal wave |
title_short |
Stress evaluation of metallic material under steady state based on nonlinear critically refracted longitudinal wave |
title_full |
Stress evaluation of metallic material under steady state based on nonlinear critically refracted longitudinal wave |
title_fullStr |
Stress evaluation of metallic material under steady state based on nonlinear critically refracted longitudinal wave |
title_full_unstemmed |
Stress evaluation of metallic material under steady state based on nonlinear critically refracted longitudinal wave |
title_sort |
stress evaluation of metallic material under steady state based on nonlinear critically refracted longitudinal wave |
publisher |
Elsevier |
series |
Results in Physics |
issn |
2211-3797 |
publishDate |
2018-06-01 |
description |
This paper presents the study of applying the nonlinear ultrasonic wave to evaluate the stress state of metallic materials under steady state. The pre-stress loading method is applied to guarantee components with steady stress. Three kinds of nonlinear ultrasonic experiments based on critically refracted longitudinal wave are conducted on components which the critically refracted longitudinal wave propagates along x, x1 and x2 direction. Experimental results indicate the second and third order relative nonlinear coefficients monotonically increase with stress, and the normalized relationship is consistent with simplified dislocation models, which indicates the experimental result is logical. The combined ultrasonic nonlinear parameter is proposed, and three stress evaluation models at x direction are established based on three ultrasonic nonlinear parameters, which the estimation error is below 5%. Then two stress detection models at x1 and x2 direction are built based on combined ultrasonic nonlinear parameter, the stress synthesis method is applied to calculate the magnitude and direction of principal stress. The results show the prediction error is within 5% and the angle deviation is within 1.5°. Therefore the nonlinear ultrasonic technique based on LCR wave could be applied to nondestructively evaluate the stress of metallic materials under steady state which the magnitude and direction are included. Keywords: Stress evaluation, Nonlinear ultrasonic, Critically refracted longitudinal wave, Combined ultrasonic nonlinear parameter |
url |
http://www.sciencedirect.com/science/article/pii/S2211379718301608 |
work_keys_str_mv |
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