Fast and accurate computation of SAW diffraction effects using asymptotic expansion techniques

C. Flory, M. Tan
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引用次数: 2

Abstract

A fast and accurate method for analysis of surface acoustic wave diffraction is presented. The technique involves deriving asymptotic expansions for the diffracted beam profile (or frequency response) of a specified surface acoustic wave source, where the asymptotic expansion parameter is proportional to the distance to the observation point (or transducer separation). For moderate distances on the order of 25λ0, this method is more than 25 times faster than existing techniques using adaptive numerical integration schemes, and the speed advantage grows dramatically to well over 70 as the distance is increased to 100λ0. The accuracy is better than 1% for the 25λ0, distance, and also grows dramatically with increased distance. It is further observed that the asymptotic expansion is valid in the very near field region (distances on the order of 2.5λ0 ) with only a marginal loss in accuracy. These techniques can be applied to a wide class of highly anisotropic materials, and enjoy a significant computational speed and accuracy advantage over existing methods.
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用渐近展开技术快速准确地计算声表面波衍射效应
提出了一种快速准确的表面声波衍射分析方法。该技术涉及导出指定表面声源的衍射波束轮廓(或频率响应)的渐近展开,其中渐近展开参数与观测点的距离(或换能器距离)成正比。对于25λ0量级的中等距离,该方法比现有的自适应数值积分方法快25倍以上,当距离增加到100λ0时,速度优势显著增加到70以上。当距离为25λ0时,精度优于1%,且精度随距离的增加而显著提高。进一步观察到,渐近展开在非常近的场区域(2.5λ0量级的距离)是有效的,精度只有边际损失。这些技术可以应用于广泛的高各向异性材料,并且与现有方法相比,具有显着的计算速度和精度优势。
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