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Circumferential defect detection using ultrasonic guided waves: An efficient quantitative technique for pipeline inspection

机译:使用超声波引导波检测周向缺陷检测:管道检查的有效定量技术

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PurposeQuantitatively detecting surface defects in a circular annulus with high levels of accuracy and efficiency has been paid more attention by researchers. The purpose of this study is to investigate the theoretical dispersion equations for circumferential guided waves and then develop an efficient technique for accurate reconstruction of defects in pipes.Design/methodology/approachThe methodology applied to determine defects in pipelines includes four steps. First, the theoretical work is carried out by developing the appropriate dispersion equations for circumferential guided waves in a pipe. In this phase, formulations of strain-displacement relations are derived in a general equidistant surface coordinate. Following that, a semi-analytical finite element method (SAFEM) is applied to solve the dispersion equations. Then, the scattered fields in a circular annulus are calculated using the developed hybrid finite element method and simulation results are in accord with the law of conservation of energy. Finally, the quantitative detection of Fourier transform (QDFT) approach is further enhanced to efficiently reconstruct the defects in the circular annuli, which have been widely used for engineering applications.FindingsResults obtained from four numerical examples of flaw detection problems demonstrate the correctness of the developed QDFT approach in terms of accuracy and efficiency. Reconstruction of circumferential surface defects using the extended QDFT method can be performed without involving the analytical formulations. Therefore, the streamlined process of inspecting surface defects is well established and this leads to the reduced time in practical engineering tests.Originality/valueIn this paper, the general dispersion equations for circumferential ultrasonic guided waves have been derived using an equidistant surface coordinate and solved by the SAFEM technique to discover the relationship between wavenumber of a wave and its frequency. To reconstruct defects with high levels of accuracy and efficiency, the QDFT approach has been further enhanced to inspect defects in the annular structure.
机译:有目的地检测具有高精度和效率的圆环中的表面缺陷已经受到研究人员的更多关注。本研究的目的是研究圆周引导波的理论色散方程,然后开发一种有效的技术,以便精确地重建管道中的缺陷.Design/Methodology/ApproCh方法,该方法应用于确定管道中的缺陷包括四个步骤。首先,通过在管道中开发用于圆周引导波的适当的分散方程来执行理论上的工作。在该阶段,应变 - 位移关系的配方衍生在一般等距的表面坐标中。在此之后,应用半分析有限元方法(SAFEM)来解决分散方程。然后,使用开发的混合有限元方法计算圆环中的散射场,仿真结果符合能量守恒定律。最后,进一步增强了傅里叶变换(QDFT)方法的定量检测,以有效地重建圆形的循环中的缺陷,这些缺陷已被广泛用于工程应用。从漏洞检测问题的四个数值例子中获得的挑解结果证明了开发的正确性QDFT方法在准确性和效率方面。可以在不涉及分析制剂的情况下进行使用扩展QDFT方法的圆周表面缺陷的重建。因此,确定了检查表面缺陷的流线型过程,这导致了实际工程测试中的减少时间。近距离/价值本文,使用等距表面坐标和解决的圆周超声波引导波的一般色散方程真空技术发现波浪与其频率的波数。重建具有高水平精度和效率的缺陷,已经进一步增强了QDFT方法以检查环形结构中的缺陷。

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