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Multiscale Wavelet-Based Analysis and Characterization of Fretting Fatigue Damage in Titanium Alloys

机译:基于多尺度小波的钛合金微动疲劳损伤分析与表征

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摘要

Wavelet analysis is used to rationalize information at various scales in several branches of science, including particle physics, biology, electrical engineering, fluid mechanics, and medicine. However, this powerful technique has not been applied extensively to characterize structures of materials, fretting damage for the present case, even though many critical questions could be addressed. In particular, the following unsolved problems are considered in this paper: (a) The first problem deals with the quantitative characterization of fretted surfaces in a Ti-6A1-4V alloy. This is investigated by analyzing profilometric digital images of fretted surfaces obtained in a range of magnifications. Wavelet analysis of the data is able to identify, by examining the wavelet coefficients, dominant length scales as those regions in scale-space where the energy of the wavelet transform and/or peaks of local concentration dominate. For the range of magnifications examined, i.e. from 1.25 X to l00 X, the approx 20 X magnification is identified as the one with the most useful information, (b) An alternative procedure is employed for the second use of wavelets which deals with the non-uniformity of the contact regions. Wavelet analysis is employed to identify partially slipping regions, which result in the "pattern" of the fretted surface morphology.
机译:小波分析用于理清多个科学领域(包括粒子物理学,生物学,电气工程,流体力学和医学)中各种规模的信息。但是,尽管可以解决许多关键问题,但这种强大的技术尚未广泛应用于表征材料的结构,为当前情况微动损坏。特别是,本文考虑了以下未解决的问题:(a)第一个问题涉及Ti-6A1-4V合金中微动表面的定​​量表征。这是通过分析在一定放大倍数下获得的有毛表面的轮廓数字图像来研究的。数据的小波分析能够通过检查小波系数来确定主要长度尺度,即尺度空间中的小波变换能量和/或局部浓度峰值占主导的那些区域。对于所检查的放大倍率范围(即1.25 X到100 X),大约20 X的放大倍数被标识为具有最有用信息的放大倍数。(b)对于第二次使用小波,采用替代方法处理-接触区域的均匀性。小波分析被用来识别部分滑移的区域,这导致了微动的表面形态的“图案”。

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