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Influence of viscosity on the reflection and transmission of an acoustic wave by a periodic array of screens. The general 3-D problem

机译:粘度对屏幕的周期性阵列对声波的反射和透射的影响。一般的3D问题

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摘要

An analysis is presented of the diffraction of a pressure wave by a periodic grating including the influence of the air viscosity. The direction of the incoming pressure wave is arbitrary. As opposed to the classical nonviscous case, the problem cannot be reduced to a plane problem having a definite 3-D character. The system of partial differential equations used for solving the problem consists of the compressible Navier-Stokes equations associated with no-slip boundary conditions on solid surfaces. The problem is reduced to a system of two hypersingular integral equations for determining the velocity components in the slits’ plane and a hypersingular integral equation for the normal component of velocity. These equations are solved by using Galerkin’s method with some special trial functions. The results can be applied in designing protective screens for miniature microphones realized in MEMS technology. In this case, the physical dimensions of the device are on the order of the viscous boundary layer so that the viscosity cannot be neglected. The analysis indicates that the openings in the screen should be on the order of 10 microns in order to avoid excessive attenuation of the signal. This paper also provides the variation of the transmission coefficient with frequency in the acoustical domain.
机译:分析了周期性光栅对压力波的衍射,其中包括空气粘度的影响。入射压力波的方向是任意的。与经典的非粘性情况相反,该问题不能简化为具有确定的3D特征的平面问题。用于解决问题的偏微分方程组由与固体表面上无滑移边界条件相关的可压缩Navier-Stokes方程组成。这个问题简化为由两个用于确定缝隙平面中速度分量的超奇异积分方程和用于速度法向分量的超奇异积分方程组成的系统。通过使用带有一些特殊试验函数的Galerkin方法求解这些方程。该结果可用于设计以MEMS技术实现的微型麦克风的保护屏。在这种情况下,装置的物理尺寸在粘性边界层的数量级上,因此不能忽略粘度。分析表明,屏幕上的开口应在10微米左右,以免信号过度衰减。本文还提供了在声学域中传输系数随频率的变化。

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  • 期刊名称 other
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  • 年(卷),期 -1(45),3
  • 年度 -1
  • 页码 191–206
  • 总页数 19
  • 原文格式 PDF
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