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Analyzing Periodic Signals in Rotating Pin-on-Disc Tribotest Measurements Using Discrete Fourier Transform Algorithm

机译:使用离散傅里叶变换算法分析旋转盘上Tribotest测量中的周期信号

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摘要

In rotating pin-on-disc tribometer testing, friction coefficient data often contains various periodic components. The periodic oscillation in the measured signal can be caused by unleveled sample mounting or inhomogeneous sample surfaces along the measurement track. In any case, the periodic components need to be separated from the constant or stochastic friction signals in order to observe either the fine features of the friction coefficient or the evolution of wear characteristics. For this purpose, the discrete Fourier transform (DFT) algorithm can be used to process the data and separate the periodic components from the raw friction signal. This study demonstrates how the DFT method can enhance the analysis of pin-on-disc friction coefficient data to eliminate the artifact due to uneven sample mounting, detect the sample inhomogeneity, and follow the wear of the surface. The DFT method works much better in separating and removing the periodic noises than the commonly used box smoothing method.
机译:在旋转针盘式摩擦计测试中,摩擦系数数据通常包含各种周期性分量。测量信号中的周期性振荡可能是由于沿测量轨迹的样品安装不平整或样品表面不均匀而引起的。在任何情况下,都需要将周期分量与恒定或随机摩擦信号分开,以便观察摩擦系数的精细特征或磨损特性的演变。为此,离散傅里叶变换(DFT)算法可用于处理数据并从原始摩擦信号中分离出周期性分量。这项研究证明了DFT方法如何增强对针盘摩擦系数数据的分析,以消除由于样品安装不均匀而造成的伪影,检测样品的不均匀性以及跟踪表面的磨损。与常用的盒平滑法相比,DFT方法在分离和消除周期性噪声方面效果更好。

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