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首页> 外文期刊>Meccanica: Journal of the Italian Association of Theoretical and Applied Mechanics >Investigation of size-dependent quasistatic response of electrically actuated nonlinear viscoelastic microcantilevers and microbridges
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Investigation of size-dependent quasistatic response of electrically actuated nonlinear viscoelastic microcantilevers and microbridges

机译:电动非线性粘弹性微膜和微生物的尺寸依赖性拟谐响应的研究

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摘要

This study investigates the size-dependent quasistatic response of a nonlinear viscoelastic microelectromechanical system (MEMS) under an electric actuation. To have this problem in view, the deformable electrode of the MEMS is modelled using cantilever and doubly-clamped viscoelastic microbeams. The modified couple stress theory in conjunction with Bernoulli-Euler beam theory are used for mathematical modeling of the size-dependent instability of microsystems in the framework of linear viscoelastic theory. Simultaneous effect of electrostatic actuation including fringing field, residual stress, mid-plane stretching and Casimir and van der Waals intermolecular forces are considered in the theoretical model. A single element of the standard linear solid element is used to simulate the viscoelastic behavior. Based on the extended Hamilton's variational principle, the nonlinear governing integro-differential equation and boundary conditions are derived. Thereafter, a new generalized differential-integral quadrature solution for the nonlinear quasistatic response of electrically actuated viscoelastic micro/nanobeams under two different boundary conditions; doubly-clamped microbridge and clamped-free microcantilever. The developed model is verified and a good agreement is obtained. Finally, a comprehensive study is conducted to investigate the effects of various parameters such as material relaxation time, durable modulus, material length scale parameter, Casimir force, van der Waals force, initial gap and beam length on the pull-in response of viscoelastic microbridges and microcantilevers in the framework of viscoelasticity.
机译:本研究研究了在电动致动下的非线性粘弹性微机电系统(MEMS)的尺寸依赖性Quasistatic响应。为了具备这个问题,MEMS的可变形电极使用悬臂和双夹紧的粘弹性微观进行建模。改进的耦合应力理论与Bernoulli-euler光束理论一起用于线性粘弹性理论框架中微系统的大小依赖性不稳定性的数学建模。在理论模型中考虑了在包括条纹场,残余应力,中平面拉伸和Casimir和范德瓦尔斯分子间力的静电致动的同时效果。标准线性固体元件的单个元件用于模拟粘弹性行为。基于扩展汉密尔顿的变分原理,推导了非线性控制积分微分方程和边界条件。此后,在两个不同的边界条件下的电动粘弹性微/纳米射流的非线性Quasistatic响应的新型广义差分积分溶液;双重夹紧的微生物和自由夹紧的微膜。已验证开发的模型,并获得了良好的协议。最后,进行了综合研究,以研究各种参数,如材料弛豫时间,耐用模量,材料长度参数,卡西米尔力,范德华力,初始间隙和梁长度的粘弹性微生物的响应上的各种参数和粘弹性框架中的微型膜。

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