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Evaluation of Eddy-Current Probe Signals Due to Cracks in Fastener Holes

机译:紧固件孔中裂纹引起的涡流探棒信号的评估

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摘要

Cracks in conductors are detected through changes in the impedance of a coil that induces current in the material. In order to gain insight into the physics of the inspection, we have developed a theoretical and computational model that predicts the signals due to cracks in circular cylindrical holes using a boundary element calculation. In formulating the problem, the electromagnetic field is decomposed into transverse electric and transverse magnetic scalar modes. The effect of a planar crack in an electromagnetic field is represented by an electric current dipole layer orientated normal to the crack surface. The dipole density is determined by the integral equation whose dyadic kernel ensures that the tangential electric and magnetic fields are continuous at the surface of the hole. Instead of solving this equation, a numerical approximation is found in the form of a discrete system of linear algebraic equations formed using either boundary and volume elements depending respectively, on whether the crack opening is negligible or not. Because the kernel embodies the interface conditions at the surface of the hole, a discrete approximation of the field is only necessary in the flaw domain which means that relatively few unknowns are needed. The probe impedance variation has been computed for both ideal cracks, defined as having negligible opening but impenetrable to current, and open cracks/slots. Open crack model predictions of coil impedance variations with position relative to a semi-elliptical axial crack are in good agreement with measurements.
机译:通过感应材料中电流的线圈阻抗变化来检测导体中的裂纹。为了深入了解检查的物理原理,我们开发了一种理论和计算模型,可以使用边界元素计算来预测由于圆柱孔中的裂纹而产生的信号。在提出问题时,电磁场被分解为横向电和横向磁标量模式。在电磁场中平面裂纹的影响由垂直于裂纹表面定向的电流偶极层表示。偶极子的密度由积分方程确定,该积分方程的二进核可确保孔表面的切向电场和磁场连续。代替求解该方程式,而是发现数值近似形式为离散的线性代数方程式系统,该线性代数方程式使用边界元素和体积元素分别形成,这取决于裂纹开口是否可忽略。由于内核体现了孔表面的界面条件,因此仅在缺陷域中才需要离散场近似,这意味着需要相对较少的未知数。已针对理想裂纹(定义为具有可忽略的开孔但不渗透电流)和开放的裂纹/缝隙计算了探头阻抗变化。相对于半椭圆形轴向裂纹位置的线圈阻抗变化的开放裂纹模型预测与测量结果吻合良好。

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