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首页> 外文期刊>Journal of Sound and Vibration >Acoustic-electroelastic interactions in ultrasound energy transfer systems: Reduced-order modeling and experiment
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Acoustic-electroelastic interactions in ultrasound energy transfer systems: Reduced-order modeling and experiment

机译:超声能量转印系统中的声学 - 电弹性相互作用:降低阶级建模和实验

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Contactless ultrasound energy transfer from a piezoelectric cylinder or disk subjected to forced vibrations to a piezoelectric receiver offers the capability of safely transferring energy to sensors and devices, which is of great interest in different applications. Physical processes supporting ultrasonic energy transfer include piezoelectric-generated vibrations at a transmitting element, piezoelectric transduction of elastic vibrations at a receiving element, acoustic wave propagation, and acoustic-structure interactions at the surfaces of the transmitting and receiving elements. Considering these processes, we present an experimentally-validated multi-physics model that fills a knowledge gap in terms of accurately representing the fluid-loaded response of piezoelectric disks, usually used in ultrasonic energy transfer as a cylindrical transmitting source-cylindrical receiver combination. First, we derive the governing equations using the generalized Hamilton's principle and solve them using the finite element method. Second, we compute the surface pressure distribution due to acoustic-structure interactions under resonance conditions. We then use the mode shapes and surface pressure distributions obtained from the finite element model in conjunction with the matrix governing equations to develop a reduced-order model with quantified reactive and resistive parts of the acoustic radiation impedance. The developed reduced-order model is then experimentally validated by comparing the electrical impedance of four different piezoelectric disks having various aspect ratios. We also discuss how the proposed approach should be utilized to develop reduced-order model for piezoelectric receivers. The presented approach and reduced-order model allow for accurate identification of critical parameters that govern acoustic energy transfer between piezoelectric disks, which is crucial for designing efficient ultrasonic acoustic energy transfer systems. (C) 2020 Elsevier Ltd. All rights reserved.
机译:非接触式超声能量从压电缸或经过强制振动到压电接收器的磁盘的超声能量传递提供了安全地将能量传递给传感器和设备的能力,这对不同应用具有很大的兴趣。支撑超声能量传递的物理过程包括在透射元件处的压电产生振动,在接收元件,声波传播和发射元件的表面处的声波传播和声学结构相互作用的压电转换。考虑到这些过程,我们提出了一种实验验证的多物理模型,其填充了知识差距,以准确地表示压电盘的流体负载响应,通常用于超声能量转移作为圆柱形透射源极圆柱接收器组合。首先,我们使用广义汉密尔顿的原理推导了管理方程,并使用有限元方法来解决它们。其次,我们根据共振条件下的声学结构相互作用计算表面压力分布。然后,我们使用从有限元模型获得的模式形状和表面压力分布结合矩阵控制方程,以开发具有声辐射阻抗的量化反应和电阻部分的阶数模型。然后通过比较具有各种纵横比的四种不同压电盘的电阻抗来实验验证所开发的减少阶模型。我们还讨论了如何利用所提出的方法来开发压电接收器的阶数模型。所提出的方法和下降阶模型允许精确地识别控制压电盘之间的声能传输的关键参数,这对于设计有效的超声波声能传输系统至关重要。 (c)2020 elestvier有限公司保留所有权利。

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