基于修正耦合应力理论的层状压电半导体纳米板的弯曲、自由振动和屈曲

IF 2.3 3区 工程技术 Q2 MECHANICS
Miao Zhang, Junhong Guo
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引用次数: 0

摘要

研究了具有修正耦合应力效应的三维层状压电半导体纳米片的弯曲变形、自由振动和屈曲行为。采用传播子矩阵法,推导了层状PS纳米板在弯曲变形、自由振动固有频率和压缩下临界屈曲载荷下的扩展位移和应力解析解。通过数值算例分析了初始载流子浓度、材料长度尺度参数、纳米板堆叠顺序、纳米板厚度、纳米板宽长比和加载类型对层状PS纳米板弯曲变形、振动响应和稳定性的影响。结果表明,初始载流子浓度对电子浓度扰动有显著影响。材料长度尺度参数的增大导致固有频率和临界屈曲载荷的增大。本研究结果为层状PS结构的三维静、动态特性的调节和控制提供了新的思路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bending, free vibration and buckling of layered piezoelectric semiconductor nanoplates based on modified couple stress theory

This paper presents bending deformation, free vibration and buckling behaviors of three-dimensional (3D) layered piezoelectric semiconductor (PS) nanoplates with modified couple-stress effect. Analytical solutions of the extended displacements and stresses of layered PS nanoplates of bending deformation, natural frequency of free vibration and the critical buckling load under compression are derived by using the propagator matrix method. Numerical examples are provided to show the effects of the initial carrier concentration, material length scale parameter, stacking sequence of nanoplates, thickness of nanoplates, width-to-length ratio of nanoplates and loading type on the bending deformation, vibrational response, and stability of layered PS nanoplates. The results indicate that the initial carrier concentration has a significant impact on electron concentration perturbation. An increase in material length scale parameter results in enhancement of natural frequency and critical buckling load. The present results provide a new thought for the adjustment and controlling of 3D static and dynamic behaviors in the layered PS structures.

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来源期刊
Acta Mechanica
Acta Mechanica 物理-力学
CiteScore
4.30
自引率
14.80%
发文量
292
审稿时长
6.9 months
期刊介绍: Since 1965, the international journal Acta Mechanica has been among the leading journals in the field of theoretical and applied mechanics. In addition to the classical fields such as elasticity, plasticity, vibrations, rigid body dynamics, hydrodynamics, and gasdynamics, it also gives special attention to recently developed areas such as non-Newtonian fluid dynamics, micro/nano mechanics, smart materials and structures, and issues at the interface of mechanics and materials. The journal further publishes papers in such related fields as rheology, thermodynamics, and electromagnetic interactions with fluids and solids. In addition, articles in applied mathematics dealing with significant mechanics problems are also welcome.
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