用经典方法和基于分形小波的方法分析电化学噪声信号

P. Planinsic, A. Petek
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引用次数: 2

摘要

利用电化学噪声(EN)研究了低碳钢和不锈钢在自然加气硫酸中的腐蚀过程。本文以基于小波变换的方法为基础,对经典的傅里叶和统计方法进行了比较。比较了光滑小波和分形小波离散小波变换对en信号的逼近特性。发现两种腐蚀过程en信号的近似速率差别很小。结果表明,小波变换能够对宽带en信号进行额外的时频表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of electrochemical noise signals with classical methods and methods based on fractal-like wavelets
The corrosion process of low carbon steel and stainless steel in natural aerated sulphuric acid was examined using electrochemical noise (EN). In the paper the comparison of classical Fourier/statistical methods for analysis and characterisation of EN were compared by wavelet based methods. The approximation properties of discrete wavelet transform (DWT) using smooth and fractal-like wavelets were compared for EN-signals. There were found very little differences in approximation rates for both corrosion processes EN-signals. It was shown that DWT enable additional time-frequency characterisation of broadband EN-signals.
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