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Numerical simulation of ultrasonic wave propagation in anisotropic and attenuative solid materials

机译:各向异性和衰减固体材料中超声波传播的数值模拟

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摘要

The axisymmetric elastodynamic finite element code developed is capable of predicting quantitatively accurate displacement fields for elastic wave propagation in isotropic and transversely isotropic materials. The numerical algorithm incorporates viscous damping by adding a time-dependent tensor to Hooke's law. Amplitude comparisons are made between the geometric attenuation in the far field and the corresponding finite element predictions to investigate the quality and validity of the code. Through-transmission experimental measurements made with a 1 MHz L-wave transducer attached to an aluminum sample support the code predictions. The algorithm successfully models geometric beam spreading dispersion and energy absorption due to viscous damping. This numerical model is a viable tool for the study of elastic wave propagation in nondestructive testing applications.
机译:所开发的轴对称弹性动力学有限元代码能够预测在各向同性和横向各向同性材料中弹性波传播的定量精确位移场。数值算法通过在Hooke定律中增加一个与时间有关的张量来合并粘性阻尼。在远场的几何衰减和相应的有限元预测之间进行幅度比较,以研究代码的质量和有效性。用连接到铝样品上的1 MHz L波换能器进行的透射实验测量结果支持代码预测。该算法成功地建模了由于粘性阻尼而引起的几何光束扩展色散和能量吸收。该数值模型是研究无损测试应用中弹性波传播的可行工具。

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