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Ultrasonic detection for tensile-shear strength of spot welding under different indentations based on wavelet analysis

机译:基于小波分析的超声压痕点焊拉伸剪切强度超声检测

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摘要

Traditionally, the tensile-shear strength is detected using destructive testing. A viable non-destructive testing means, such as an ultrasonic technique, is necessary in the production environment to assess the tensile-shear strength. In this paper, electrode tips that were formed intodifferent sizes were used to obtain different spot weld indentations. The method, based on the echo amplitude of a faying surface, which is viewed as an effective method by previous studies, was proven to be limited when changing the size of the electrode tip, owing to the occurrence of aspot welding structure with particular characteristics, ie an indentation and corona bond. The nuggets calculated, based on the echo amplitudes, were at the borders of the indentation, which increase with an increase in the size of the electrode tip. To address this issue, a wavelet functionwas designed based on Chebyshev low- and high-pass filters, relating to the frequency and bandwidth parameters of an ultrasonic probe. The largest energy value from the approximate coefficient of five-level wavelet decomposition is used to distinguish the nugget, corona bond and indentation.The nugget areas obtained, based on the largest energy value from the approximate coefficient, decrease with an increase in the size of the electrode tip and increase linearly with the tensile-shear strength.
机译:传统上,使用破坏性测试来检测拉伸剪切强度。在生产环境中,必须有可行的无损检测手段(例如超声技术)来评估拉伸剪切强度。在本文中,使用形成不同尺寸的电极头来获得不同的点焊压痕。该方法基于接合面的回波幅度,被先前的研究视为一种有效方法,由于改变了电极尖端的尺寸,该方法被证明是受限制的,原因是出现了具有特殊特性的点焊结构,即压痕和电晕键。基于回波幅度计算出的熔核位于压痕的边界,随着电极尖端尺寸的增加而增加。为了解决这个问题,基于切比雪夫低通和高通滤波器设计了一种小波函数,该函数与超声探头的频率和带宽参数有关。五级小波分解的近似系数中最大的能量值用于区分金块,电晕键和压痕。基于近似系数的最大能量值获得的金块面积随着尺寸的增加而减小。电极尖端并随着拉伸剪切强度线性增加。

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