材料、几何和频率无关的二元通用函数用于声学设备中机械和电气负载效应的分析:一种快速mom方法

A. Baghai-Wadji
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引用次数: 6

摘要

本文考虑了表面声波器件在一般条件下的质量载荷问题。我们假设有有限数量的非等距间距电极,具有任意截面几何形状和材料结构。本文还讨论了电载荷效应,并提出了一个模型,该模型是作者1989年发表的模型的推广。为了解决我们的问题,我们大大提高了快速mom分析技术的能力。结果表明,生成与频率、材料和几何无关的二元通用函数是可能的。本文的目的是提供一个关于如何创建通用函数的想法。有了通用函数,我们只需遵循以下方法来解决实际问题:(1)离散电极边界;(2)找出若干采样点的位置;(3)对通用函数进行抽样;(4)构造方阵;(5)解一个方程组。如果频率、材料或电极的几何形状发生变化,则只会改变采样点的位置。本文给出了通用函数的实例,并讨论了Fast-MoM的一种应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Material, geometry, and frequency independent bivariate universal functions for the analysis of mechanical and electrical loading effects in acoustic devices: A Fast-MoM approach
In this paper we consider the massloading problem in surface acoustic wave devices under fairly general conditions. We assume a finite number of non-equidistantly spaced electrodes with arbitrary cross-section geometries and material constitutions. Electrical loading effect is also addressed and a model is presented which is a generalization of this author's model published in 1989. To solve our problem we have considerably improved the capabilities of the Fast-MoM analysis technique. It turns out that it is possible to generate bivariate universal functions which are frequency, material, and geometry independent. The purpose of this paper is to provide an idea about how the universal functions are created. Having the universal functions we simply have to follow the following recipe to solve a practical problem: (1) discretize the boundaries of electrodes; (2) find the positions of a number of sampling points; (3) sample the universal functions; (4) construct a square matrix; (5) solve a system of equations. If the frequency, or the material, or the geometry of an electrode alters only the locations of the sampling points change. In this paper we present examples for the universal functions and discuss one application of the Fast-MoM.
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