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Experiment and simulation study of 3D magnetic field sensing for magnetic flux leakage defect characterisation

机译:3D磁场感应检测漏磁特性的实验与仿真研究

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Magnetic flux leakage (MFL) testing is widely used to detect and characterise defects in pipelines, rail tracks and other structures. The measurement of the two field components perpendicular to the test surface and parallel to the applied field in MFL systems is well established. However, it is rarely effective when the shapes of the specimens and defects with respect to the applied field are arbitrary. In order to overcome the pitfalls of traditional MFL measurement, measurement of the three-dimensional (3D) magnetic field is proposed. The study is undertaken using extensive finite element analysis (FEA) focussing on the 3D distribution of magnetic fields for defect characterisation and employing a high sensitivity 3-axis magnetic field sensor in experimental study. Several MFL tests were undertaken on steel samples, including a section of rail track. The experimental and FEA test results show that data from not only the x- and z-axes but also y-axis can give comprehensive positional information about defects in terms of shape and orientation, being especially advantageous where the defect is aligned close to parallel to the applied field. The work concludes that 3D magnetic field sensing could be used to improve the defect characterisation capabilities of existing MFL systems, especially where defects have irregular geometries.
机译:磁通量泄漏(MFL)测试被广泛用于检测和表征管道,轨道和其他结构中的缺陷。垂直建立在MFL系统中垂直于测试表面并平行于所施加场的两个场分量的测量已经建立。然而,当试样的形状和相对于施加场的缺陷是任意的时,这种方法很少有效。为了克服传统MFL测量的缺陷,提出了三维(3D)磁场的测量方法。这项研究是使用广泛的有限元分析(FEA)进行的,该分析专注于磁场的3D分布以进行缺陷表征,并在实验研究中采用了高灵敏度的3轴磁场传感器。对钢样进行了几次MFL测试,包括一段铁轨。实验和FEA测试结果表明,不仅来自x轴和z轴的数据,而且来自y轴的数据都可以在形状和方向方面提供有关缺陷的全面位置信息,在缺陷排列接近于平行于应用领域。这项工作得出的结论是,可以使用3D磁场感测来改善现有MFL系统的缺陷表征能力,尤其是在缺陷具有不规则几何形状的情况下。

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