Thermo-electrical postbuckling behavior of carbon nanotubes-reinforced composite beams with piezoelectric layers and tangentially restrained ends

Nguyen Van Thinh, H. Tung
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Abstract

An analytical investigation on the buckling and postbuckling behavior of carbon nanotube-reinforced composite beams integrated with surface-bonded piezoelectric layers under uniform temperature rise is presented in this paper. Carbon nanotubes (CNTs) are reinforced into isotropic matrix through uniform distribution and functionally graded distributions. The properties of material constituents are assumed to be temperature-dependent and effective properties of CNT-reinforced composite are estimated using an extended rule of mixture. Equilibrium equations of the beams are established based on Euler-Bernoulli theory including von Kármán nonlinearity and solved using analytical solutions and Galerkin method. Critical temperatures and postbuckling load-deflection paths are determined using an iteration algorithm. Parametric studies are performed to examine the influences of CNT distribution and volume fraction, applied voltage, in-plane and out-of-plane conditions of the ends, slenderness, and thickness ratio of layers on the critical loads and postbuckling load carrying capacity of beams. Results reveal that CNT volume fraction and degree of in-plane ends constraint have slight and significant influences on the critical temperatures and thermal postbuckling paths, respectively. The study also finds that negative and positive voltages increase and decrease the thermal buckling temperatures of piezoelectric CNT-reinforced composite beams.
带有压电层和切向约束端部的碳纳米管增强复合梁的热电后屈曲行为
本文对在均匀温升条件下集成了表面粘结压电层的碳纳米管增强复合梁的屈曲和后屈曲行为进行了分析研究。碳纳米管(CNTs)通过均匀分布和功能分级分布被加固到各向同性基体中。假定材料成分的特性与温度有关,并使用扩展的混合规则估算 CNT 增强复合材料的有效特性。根据欧拉-伯努利理论(包括 von Kármán 非线性)建立了梁的平衡方程,并使用分析解法和 Galerkin 方法进行求解。使用迭代算法确定了临界温度和屈曲后载荷-挠度路径。通过参数研究,考察了 CNT 的分布和体积分数、外加电压、端部的平面内和平面外条件、细长度以及层厚度比对梁的临界载荷和屈曲后承载能力的影响。研究结果表明,CNT 体积分数和平面内端点约束程度分别对临界温度和热屈曲后路径有轻微和显著影响。研究还发现,负电压和正电压会提高和降低压电 CNT 增强复合梁的热屈曲温度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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