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A Novel Electromagnetic Method for Local Defects Inspection of Wire Rope

机译:一种用于钢丝绳局部缺陷检查的新型电磁方法

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Electromagnetic (EM) testing of wire rope is the only effective technology and yields extensive use in the application and manufacturing industry of wire rope. Most EM testing instruments give one-dimensional axial magnetic flux leakage signal, losing the circumferential distribution of defects. Then the identification and classification of the defects largely depend on an operator''s experience. Two-dimensional magnetic leakage signal of wire rope is acquired via an inspection prototype with Hall sensor array in this paper, and an adaptive spatial notch filter is designed to eliminate the inherent strand-waveform noise of the wire rope signal. Then a two-dimensional image recognition algorithm is introduced to identify and classify local defects, which includes feature extraction with Karhunen-Loeve (K-L) transformation and defects classification with neural networks. The experimental results show back propagation (BP) network is effective and has a discrimination of 90% for several typical local defects
机译:钢丝绳的电磁(EM)测试是唯一有效的技术,在钢丝绳的应用和制造行业中得到了广泛的应用。大多数EM测试仪器都会给出一维轴向磁通泄漏信号,从而丢失缺陷的圆周分布。然后,缺陷的识别和分类很大程度上取决于操作员的经验。本文通过带霍尔传感器阵列的检测原型获得了钢丝绳的二维漏磁信号,并设计了自适应空间陷波滤波器以消除钢丝绳信号固有的股线波形噪声。然后引入二维图像识别算法对局部缺陷进行识别和分类,包括Karhunen-Loeve(K-L)变换的特征提取和神经网络的缺陷分类。实验结果表明,反向传播(BP)网络是有效的,对几种典型的局部缺陷的辨别率达到90%

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