压电驱动双悬臂结构的扭扭耦合强迫振动分析

IF 1.9 4区 工程技术 Q2 ACOUSTICS Journal of Vibration and Acoustics-Transactions of the Asme Pub Date : 2022-01-28 DOI:10.1115/1.4053714
A. Zargarani, John O'Donnell, Nima Mahmoodi
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引用次数: 1

摘要

本文研究了压电驱动双悬臂结构的扭扭强迫耦合振动。双悬臂结构由两根均匀且相同的欧拉-伯努利悬臂梁组成,其自由端采用刚性尖端连接。在每个悬臂梁的顶表面也有一个压电层。推导了结构扭扭耦合振动的特征方程,并对其进行求解,确定了结构的固有频率。采用伽辽金近似方法研究了结构对强迫振动的时间响应。分析和实验研究了悬臂梁长度、尖端连接长度和压电输入电压等尺寸参数对结构弯扭耦合固有频率和幅值的影响。结果表明:压电驱动双悬臂梁结构的弯扭耦合基频随悬臂梁长度和端部连接的增加而减小;此外,结构的扭扭耦合振动幅值与压电输入电压成正比,但曲线的斜率取决于尺寸参数。对于给定的电压,上述任何一个尺寸参数对振动振幅的影响取决于另一个尺寸参数,因此在所有曲线中都有一个转折点,其位置取决于结构的配置。
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COUPLED FLEXURAL-TORSIONAL FORCED VIBRATION ANALYSIS OF A PIEZOELECTRICALLY-ACTUATED DOUBLE-CANTILEVER STRUCTURE
In this paper, the forced coupled flexural-torsional vibration of a piezoelectrically-actuated double-cantilever structure is investigated. The double-cantilever structure is composed of two uniform and identical Euler-Bernoulli cantilever beams connected by a rigid tip connection at their free ends. There is also a piezoelectric layer on the top surface of each cantilever beam. The characteristic equation for the coupled flexural-torsional vibrations of the structure is derived and solved to determine the natural frequencies. The time response to the forced vibrations of the structure is studied using the Galerkin approximation method. The effects of dimensional parameters, including the length of the cantilever beams and the length of the tip connection, and the piezoelectric input voltage on the coupled flexural-torsional natural frequencies and amplitude of the vibrations of the structure are investigated analytically and experimentally. The results show that the coupled flexural-torsional fundamental frequency of the piezoelectrically-actuated double-cantilever structure decreases as either the length of the cantilever beams or the tip connection is increased. Moreover, the amplitude of the coupled flexural-torsional vibrations of the structure is proportional to the piezoelectric input voltage, however, the slope of the curves depends on dimensional parameters. For a given voltage, the effect of either of the aforementioned dimensional parameter on the amplitude of vibrations depends on the other dimensional parameter such that there is a turning point in all the curves, whose location depends on the configuration of the structure.
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来源期刊
CiteScore
4.20
自引率
11.80%
发文量
79
审稿时长
7 months
期刊介绍: The Journal of Vibration and Acoustics is sponsored jointly by the Design Engineering and the Noise Control and Acoustics Divisions of ASME. The Journal is the premier international venue for publication of original research concerning mechanical vibration and sound. Our mission is to serve researchers and practitioners who seek cutting-edge theories and computational and experimental methods that advance these fields. Our published studies reveal how mechanical vibration and sound impact the design and performance of engineered devices and structures and how to control their negative influences. Vibration of continuous and discrete dynamical systems; Linear and nonlinear vibrations; Random vibrations; Wave propagation; Modal analysis; Mechanical signature analysis; Structural dynamics and control; Vibration energy harvesting; Vibration suppression; Vibration isolation; Passive and active damping; Machinery dynamics; Rotor dynamics; Acoustic emission; Noise control; Machinery noise; Structural acoustics; Fluid-structure interaction; Aeroelasticity; Flow-induced vibration and noise.
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