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PZT-Based Ultrasonic Guided Wave Frequency Dispersion Characteristics of Tubular Structures for Different Interfacial Boundaries

机译:基于PZT的不同界面边界的管状结构超声导波频率色散特性

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摘要

For tubular structures, ultrasonic guided waves (UGWs) which are closely related to interfacial boundary conditions such as gas, liquid and solid materials, are usually used in damage detection. Due to the different phase materials inside tubes, the interfacial boundary (connection) conditions are variable, which has a great influence on the dispersion-related UGW propagation characteristics. However, most UGW-based damage detection methods only consider the pipeline structures as hollow tubes, ignoring the interfacial boundary condition influences on the UGW propagation. Based on the UGW theory, this paper aims to propose a novel method for describing the UGW propagation characteristics for different interfaces, and lay a foundation for the UGW-based tubular structure damage detection. Based on the Navier’s equation of motion and combined with interfacial boundary conditions and coordinate conditions, the dispersion equations for a hollow steel tube, a tube filled with liquid, and a concrete filled steel tube (CFST) were established, respectively. Under the given conditions of both materials and geometric parameters, the transcendental dispersion equations were established and solved by using a numerical method. The UGW propagation characteristics in different interfaces were classified and discussed, and the dispersion curves of both group and phase velocities are drawn. To validate the efficiency of theoretical and numerical results, three kinds of model tubular structure experiments filled in air (hollow), water and concrete, respectively, were performed based on lead zirconate titanate (PZT) transducer UGWs. The results showed that the UGWs propagation in different interfaces has the dispersion and multi-modes characters, which are not only related to the product of frequency and thickness, but also to the internal dielectric material parameters and interfacial boundary conditions.
机译:对于管状结构,通常在损伤检测中使用与界面边界条件(例如气体,液体和固体材料)密切相关的超声波导波(UGW)。由于管内的相材料不同,界面边界(连接)条件是可变的,这对与分散相关的UGW传播特性有很大影响。但是,大多数基于UGW的损伤检测方法只将管道结构视为空心管,而忽略了界面边界条件对UGW传播的影响。本文基于UGW理论,旨在提出一种描述UGW在不同界面传播特性的新方法,为基于UGW的管状结构损伤检测奠定基础。基于Navier运动方程,并结合界面边界条件和坐标条件,分别建立了空心钢管,液体填充钢管和混凝土填充钢管(CFST)的色散方程。在给定的材料和几何参数条件下,建立了超越色散方程,并采用数值方法求解。分类和讨论了UGW在不同界面上的传播特性,并绘制了群速度和相速度的色散曲线。为了验证理论和数值结果的有效性,基于钛酸锆酸铅(PZT)传感器UGW分别进行了三种模型管状结构实验,分别填充在空气(空心),水和混凝土中。结果表明,UGWs在不同界面上的传播具有色散和多模态特性,不仅与频率和厚度的乘积有关,而且与内部介电材料参数和界面边界条件有关。

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