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首页> 外文期刊>IEEE Transactions on Magnetics >The Effect of Motion-Induced Eddy Currents on Three-Axis MFL Signals for High-Speed Rail Inspection
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The Effect of Motion-Induced Eddy Currents on Three-Axis MFL Signals for High-Speed Rail Inspection

机译:运动诱导的涡流对高速铁路检验三轴MFL信号的影响

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摘要

Nondestructive testing (NDT) methods are widely used in the rail industry to detect rolling contact damage (RCD) defects to ensure railway safety. With the need of monitoring millions of miles of rail tracks more effectively and efficiently that leads to improved rail safety, reliability, and optimized assets management, the research on high-speed and high-accuracy NDT methods that can obtain high signal-to-noise ratio (SNR) and high sensitivity defect signals at higher speeds is of vital importance. Magnetic flux leakage (MFL) is one of the NDT methods used for high-speed rail inspection, which is suitable for detecting surface and subsurface RCD defects on railhead, but the measured MFL signals are distorted severely by the effect of motion-induced eddy currents (MIEC). However, the fundamental understanding of the mechanism of MIEC generation, distribution, and magnitude is lacking, and the physical interaction between MIEC and MFL measurement during high-speed rail inspection has not been well studied. This article investigates the effect of MIEC on three-axis MFL signals through 3-D finite-element method (FEM) simulations. The 3-D distributions of MIEC and 2-D image signals of MFL measurements for high-speed rail MFL inspection are presented and analyzed. The simulations are conducted with an inspection speed range of 0-62.5 mi/h, and a surface hemisphere-type defect and subsurface hole-type defect are both considered. The results show that the motion between the magnetizer and the rail will generate two types of MIEC, which in turn decreases the peak values of three-axis MFL signals from the subsurface defect and affects the MFL signals spatially, especially the base values along rail transverse and vertical directions. The effect of MIEC on the three-axis MFL signals in terms of SNR, sensitivity, and asymmetry is discussed.
机译:无损检测(NDT)方法广泛用于铁路工业,以检测滚动接触损坏(RCD)缺陷,以确保铁路安全。需要更有效且有效地监控数百万英里的轨道轨道,从而导致轨道安全,可靠性和优化的资产管理,高速和高精度NDT方法的研究可以获得高信噪比比率(SNR)和高敏感性缺陷信号在更高的速度下至关重要。磁通泄漏(MFL)是用于高速轨道检查的NDT方法之一,适用于检测轨道上的表面和地下RCD缺陷,但测量的MFL信号因运动引起的涡流的影响而严重扭曲(miec)。然而,缺乏对MIEC发电,分布和幅度机制的基本理解,并且在高速铁路检查期间MIEC和MFL测量之间的物理相互作用并未得到很好地研究。本文通过三维有限元方法(FEM)模拟来调查MIEC对三轴MFL信号的影响。提出和分析了对高速轨MFL检查的MFL测量的MIEC和2-D图像信号的3-D分布。仿真进行了0-62.5 mi / h的检查速度范围,并考虑表面半球型缺陷和地下孔型缺陷。结果表明,磁化器和轨道之间的运动将产生两种类型的MIEC,这又会降低来自地下缺陷的三轴MFL信号的峰值,并在空间上影响MFL信号,尤其是轨道横向的基本值和垂直方向。讨论了MIEC在SNR,灵敏度和不对称方面对三轴MFL信号的影响。

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