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Wave Speed Propagation Measurements on Highly Attenuative Heated Materials

机译:高衰减加热材料的波浪速度传播测量

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Ultrasonic wave propagation decreases as a material is heated. Two factors that can characterize material properties are changes in wave speed and energy loss from interactions within the media. Relatively small variations in velocity and attenuation can detect significant differences in microstructures. This paper discusses an overview of experimental techniques that document the changes within a highly attenuative material as it is either being heated or cooled from 25°C to 90°C. The experimental set-up utilizes ultrasonic probes in a through-transmission configuration. The waveforms are recorded and analyzed during thermal experiments. To complement the ultrasonic data, a Discontinuous-Galerkin Model (DGM) was also created which uses unstructured meshes and documents how waves travel in these anisotropic media. This numerical method solves particle motion travel using partial differential equations and outputs a wave trace per unit time. Both experimental and analytical data are compared and presented.
机译:超声波传播随着材料加热而减小。可以表征材料特性的两个因素是媒体内相互作用的波速和能量损失的变化。速度和衰减的相对较小的变化可以检测微结构的显着差异。本文讨论了实验技术的概述,该技术将高度衰减材料内的变化记录在将其被加热或从25℃加热至90°C时。实验组利用通过传输配置中的超声波探头。在热实验期间记录和分析波形。为了补充超声数据,还创建了一种不连续的Galerkin模型(DGM),其使用非结构化网格和文档如何在这些各向异性介质中行驶。该数值方法使用部分微分方程求解粒子运动行程,并每单位时间输出波迹线。比较和呈现实验和分析数据。

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