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Peri-Elastodynamic Simulations of Guided Ultrasonic Waves in Plate-Like Structure with Surface Mounted PZT

机译:表面安装PZT的板状结构中导引超声波的围弹性动力学模拟

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摘要

Peridynamic based elastodynamic computation tool named Peri-elastodynamics is proposed herein to simulate the three-dimensional (3D) Lamb wave modes in materials for the first time. Peri-elastodynamics is a nonlocal meshless approach which is a scale-independent generalized technique to visualize the acoustic and ultrasonic waves in plate-like structure, micro-electro-mechanical systems (MEMS) and nanodevices for their respective characterization. In this article, the characteristics of the fundamental Lamb wave modes are simulated in a sample plate-like structure. Lamb wave modes are generated using a surface mounted piezoelectric (PZT) transducer which is actuated from the top surface. The proposed generalized Peri-elastodynamics method is not only capable of simulating two dimensional (2D) in plane wave under plane strain condition formulated previously but also capable of accurately simulating the out of plane Symmetric and Antisymmetric Lamb wave modes in plate like structures in 3D. For structural health monitoring (SHM) of plate-like structures and nondestructive evaluation (NDE) of MEMS devices, it is necessary to simulate the 3D wave-damage interaction scenarios and visualize the different wave features due to damages. Hence, in addition, to simulating the guided ultrasonic wave modes in pristine material, Lamb waves were also simulated in a damaged plate. The accuracy of the proposed technique is verified by comparing the modes generated in the plate and the mode shapes across the thickness of the plate with theoretical wave analysis.
机译:本文提出了一种基于围动力学的弹性动力学计算工具,称为围岩弹性动力学,以首次模拟材料中的三维(3D)Lamb波模式。围弹弹性动力学是一种非局部无网格方法,它是一种与比例无关的通用技术,用于可视化板状结构,微机电系统(MEMS)和纳米器件中的声波和超声波,以进行各自的表征。在本文中,在样品板状结构中模拟了基本Lamb波模式的特性。使用从顶部表面致动的表面安装压电(PZT)换能器生成兰姆波模式。所提出的广义周弹性动力学方法不仅能够在先前公式化的平面应变条件下模拟平面波的二维(2D),而且能够在3D模式下精确模拟板状结构的平面外对称和反对称Lamb波模式。对于板状结构的结构健康监测(SHM)和MEMS器件的无损评估(NDE),必须模拟3D波浪-损伤相互作用场景并可视化由于损伤而引起的不同波浪特征。因此,除了模拟原始材料中的引导超声波模式外,还对受损板中的兰姆波进行了模拟。通过用理论波分析比较板中产生的模和板整个厚度上的模形状,可以验证所提出技术的准确性。

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