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首页> 外文期刊>International journal of applied mechanics >Static Pull-in Analysis of Electrostatically Actuated Functionally Graded Micro-Beams Based on the Modified Strain Gradient Theory
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Static Pull-in Analysis of Electrostatically Actuated Functionally Graded Micro-Beams Based on the Modified Strain Gradient Theory

机译:基于改进的应变梯度理论的静电致动功能梯度微梁静态拉动分析

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In this paper, the static pull-in behavior of electrostatically actuated functionally graded (FG) micro-beams resting on an elastic medium is studied using the modified strain gradient (MSG) theory. To this end, the equilibrium equation along with classical and non-classical boundary conditions is obtained by considering the fringing field and elastic foundations effects within the principle of minimum total potential energy. Also, the elastic medium is composed of a shear layer (Pasternak foundation) and a linear normal layer (Winkler foundation). The governing differential equation is solved for cantilever and doubly fixed FG beams using an iterative numerical method. This method is a combination of the reduced-order technique, the fourth-order Runge-Kutta and shooting methods. The pull-in voltages of silicon beams obtained from the present model are compared with the experimental and theoretical results reported in the literature. It is seen that the MSG theory is able to reduce significantly the difference between pull-in voltages predicted by theoretical approaches based on the classical continuum theory and the experimental observations. Finally, a parametric study is carried out to analyze in detail the influences of power index, length scale parameters, coefficients of elastic foundations and boundary conditions on the pull-in behavior of FG micro-beams. Findings indicate that the size effect on the pull-in instability of FG micro-beams with both boundary conditions is significant; however, it is seen that the variation with the normalized length scale parameter of static pull-in voltages for doubly fixed beams is larger than cantilever beams. Also, it is shown that the increase of ceramic volume fraction can improve the pull-in resistance of beams. However, this influence becomes smaller with rise of power index for both cases.
机译:在本文中,使用改性应变梯度(MSG)理论研究静电致动的功能梯度(FG)微束的静态拉动行为。为此,通过考虑排列领域和弹性基础效应在最小总势能的原则内效应来获得均衡方程以及经典和非经典边界条件。而且,弹性介质由剪切层(Pasternak基础)和线性正常层(Winkler Foundation)组成。使用迭代数值方法为悬臂和双固定FG梁求解控制微分方程。该方法是减少阶技术,第四阶runge-Kutta和拍摄方法的组合。将从本模型中获得的硅束的拉出电压与文献中报道的实验和理论结果进行了比较。可以看出,MSG理论能够显着降低基于经典连续理论和实验观察的理论方法预测的拉出电压之间的差异。最后,进行参数研究,详细分析功率指数,长度参数,弹性基础系数和边界条件对FG微束的拉动行为的影响。调查结果表明,尺寸对带有边界条件的FG微梁的拉伸不稳定性;然而,可以看出,对于双固定光束的静态拉动电压的常规长度比例的变化大于悬臂梁。而且,表明陶瓷体积分数的增加可以提高梁的拉动阻力。然而,随着两种情况的功率指数升高,这种影响变小。

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