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Sound transmission loss of double-wall piezoelectric plate made of functionally graded materials via third-order shear deformation theory

机译:通过三阶剪切变形理论,由功能分级材料制成的双壁压电板的声音传输损耗

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摘要

According to the third-order shear deformation assumption, this paper analytically investigates the sound transmission loss (STL) through a rigidly baffled finite rectangular double wall piezoelectric plate structure made of functionally graded materials (FGMs) with enclosed acoustic cavity, under harmonic plane sound excitation and initial external electric voltage. The effective piezoelectric material properties of each plate are supposed to be continuously variable across the thickness direction using a power law model in terms of the volume fractions of the material phases. The coupled vibroacoustic governing equations are achieved utilizing Hamilton's principle and then solved analytically by applying the sound velocity potential method in conjunction with double Fourier series expansions to determine STL equation. Numerical studies are performed to illustrate the effects of the acoustic cavity depth, initial external electric voltage, incident elevation angle, gas type used in acoustic cavity, and material gradient on the changes of STL curves of simply supported double wall FGM piezoelectric plate. The profound effect of these factors on sound isolation performance is clearly shown.
机译:根据三阶剪切变形假设,本文通过谐振平面声音激励,通过刚性挡板的有限矩形双壁压电板结构分析了通过刚性挡板的有限矩形双壁压电板结构来研究声音传输损耗(STL)。和初始外电压。在材料相的体积分数方面,每个板的有效压电材料特性应该在厚度方向上连续变化。利用汉密尔顿的原理实现耦合的vibro声学控制方程,然后通过将声速势电位方法与双傅里叶串联扩展相结合来确定STL等式来分析。进行数值研究以说明声腔深度,初始外部电压,入射仰角,气体型在声腔中使用的气体型的影响,以及基于简称双壁FGM压电板STL曲线的变化的材料梯度。这些因素对声音隔离性能的深刻效果明显显示。

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