The homogeneity effects of magnetic flux density distribution on the detection of railhead surface defects via the magnetic flux leakage method

O. Kara, H. H. Çelik
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Abstract

Magnetic flux leakage (MFL) is a non-destructive testing method used to detect railhead surface defects. For effective MFL testing, the homogeneity of the magnetic flux density distribution (MFDD) within the railhead is crucial. Inhomogeneous formation of the MFDD within the railhead reduces the efficiency of the MFL testing. The homogeneity of the MFDD depends on the distance between poles (DBP) of the MFL testing system. According to the literature, as the DBP parameter increases, the MFDD becomes more homogeneous. In this study, four different homogeneity levels of the MFDD are introduced based on the DBP parameter. 3D finite element method (FEM) modelling simulation is conducted to obtain MFL testing analyses. The analyses are performed on a rail that contains rectangular surface defects of varying depth and length. The results of this study are evaluated using characteristic features of the MFL signal BX component, namely the slope of the baseline, the bottom value and the peak-to-peak value. The results show that if the homogeneity level of the MFDD within the railhead is higher, the bottom value and slope of the baseline decrease and the peak-to-peak value increases. This indicates that higher homogeneity of the MFDD enhances the detection efficiency of the MFL testing. Eventually, it is found that with the formation of nearly 100% homogeneous MFDD in the railhead, the slope of the baseline, the bottom value and the peak-to-peak value are enhanced by up to 83%, 77% and 12%, respectively.
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磁通密度分布的均匀性对通过漏磁通量法检测轨头表面缺陷的影响
漏磁通(MFL)是一种用于检测轨头表面缺陷的无损检测方法。要实现有效的漏磁检测,轨头内磁通密度分布(MFDD)的均匀性至关重要。轨头内磁通密度分布不均匀会降低 MFL 测试的效率。磁通密度分布的均匀性取决于 MFL 测试系统的磁极间距 (DBP)。根据文献,随着 DBP 参数的增加,MFDD 会变得更加均匀。在本研究中,根据 DBP 参数引入了四种不同的 MFDD 均匀度等级。通过三维有限元法(FEM)建模仿真获得 MFL 测试分析。分析是在包含不同深度和长度的矩形表面缺陷的钢轨上进行的。本研究的结果使用 MFL 信号 BX 分量的特征进行评估,即基线斜率、底部值和峰峰值。结果表明,如果轨头内的 MFDD 均质性水平越高,底值和基线斜率就越小,峰-峰值就越大。这表明,MFDD 的同质性越高,MFL 测试的检测效率就越高。最终发现,当轨头内形成近 100%均匀的 MFDD 时,基线斜率、底值和峰-峰值分别提高了 83%、77% 和 12%。
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