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首页> 外文期刊>International journal of applied electromagnetics and mechanics >Prove the ability of microwave nondestructive method combined with signal processing to determine the position of a circumferential crack in pipes
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Prove the ability of microwave nondestructive method combined with signal processing to determine the position of a circumferential crack in pipes

机译:证明了微波无损检测与信号处理相结合的能力,可以确定管道中圆周裂纹的位置

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This paper presents a technique using microwaves nondestructive testing to detect circumferential crack and its location in stainless steels pipe. This approach is based on the surface current flow in the inner surface of the test pipe, when electromagnetic (EM) waves are propagating inside the pipe. Since the conductive pipe is an excellent waveguide, EM-wave can be propagated inside the pipe above the cutoff frequencies in large distances. To detect circumferential crack in pipes, a suitable EM-wave mode is generated in the inspected pipe with crack. For this purpose, a mode-converter is used to convert rectangular TE{sub}10-mode to the circular TM{sub}01-mode. This mode is controlled and resonated by a moving a plunger mounted in the mode-converter. To show the crack existence from experimental data, the background signal of a pipe without a crack is subtracted from that one with a crack. The location of the crack is found by knowing the time of flight (TOF) of the reflected waves and the group velocities of the waves in each part of the waveguides used in this study. The TOFs are obtained through an analysis based on the Inverse Fast Fourier Transform (IFFT) of the signals in the frequency domain and a method of signal cancellation. The obtained results show that this NDT method is suitable for determining of crack locations in large pipes without point-by-point screening since electromagnetic waves above their cutoff frequencies can propagate in pipes without significant attenuation loss. Our study is of a fundamental interest in nuclear power plants and piping systems.
机译:本文提出了一种使用微波无损检测技术来检测圆周裂纹及其在不锈钢管中的位置的技术。这种方法基于电磁波在试管内部传播时,在试管内表面的表面电流流动。由于导电管是极好的波导,因此,电磁波可以在截止频率以上在管内大距离传播。为了检测管道中的周向裂纹,在受检管道中会产生合适的EM波模式。为此,使用模式转换器将矩形TE {sub} 10模式转换为圆形TM {sub} 01模式。通过移动安装在模式转换器中的柱塞来控制和谐振该模式。为了从实验数据中显示裂纹的存在,从有裂纹的管道中减去没有裂纹的管道的背景信号。通过了解反射波的传播时间(TOF)和在本研究中使用的波导各部分中的波群速度,可以找到裂纹的位置。通过基于频域中信号的快速傅立叶逆变换(IFFT)进行分析并采用信号消除方法来获得TOF。获得的结果表明,该NDT方法适用于无需逐点筛选即可确定大型管道中的裂纹位置的方法,因为超过其截止频率的电磁波可以在管道中传播而不会产生明显的衰减损失。我们的研究对核电厂和管道系统具有根本的意义。

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