利用修正耦合应力理论下的 DPL 模型对压电热弹性纳米梁谐振器进行热弹性阻尼分析

Anjali Srivastava, Santwana Mukhopadhyay
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引用次数: 0

摘要

本研究以双相位滞后热弹性理论为框架,探讨了压热弹性(PTE)纳米梁的横向振动。通过使用欧拉-伯努利梁理论和复频方法,得出了均质横向各向同性 PTE 梁的热弹性阻尼(TED)的质量因子闭式分析表达式。应用修正耦合应力理论(MCST)解决了纳米结构梁的尺寸效应问题。在目前情况下,尝试在三组边界条件下详细分析热波动和电动势引起的振动阻尼,以研究双相滞后参数、压电参数、热效应和尺寸依赖行为对 PTE 梁谐振器中 TED 引起的能量耗散的影响。分析结果借助锆钛酸铅(PZT-5A)PTE 材料的数值结果图进行说明。这项研究针对目前的热传导模型得出了一些重要的关键发现和观察结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Thermoelastic damping analysis for a piezothermoelastic nanobeam resonator using DPL model under modified couple stress theory

Thermoelastic damping analysis for a piezothermoelastic nanobeam resonator using DPL model under modified couple stress theory

The current work investigates the transverse vibration of a piezothermoelastic (PTE) nanobeam in the frame of dual-phase-lag thermoelasticity theory. Closed-form analytical expression for the thermoelastic damping (TED) in terms of quality factor for a homogeneous transversely isotropic PTE beam is derived by using Euler–Bernoulli beam theory and complex frequency approach. The size effect of the nanostructured beam is tackled by applying modified couple stress theory (MCST). Detailed analysis on damping of vibration owing to thermal fluctuations and electric potential in the present context under three sets of boundary conditions is attempted to investigate the influences of two-phase-lag parameters, piezoelectric parameter, thermal effect and size-dependent behaviour on energy dissipation caused by TED in PTE beam resonators. Analytical results are illustrated with the help of graphical plots on numerical findings for lead zirconate titanate (PZT-5A) PTE material. The investigation brings out some significant key findings and observations in view of the present heat conduction model.

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