Augmentation of the stable static travel range of electrostatically actuated slender nano-cantilevers by accounting for the influence of the van der Waals force

Kedar S. Pakhare, R. Shimpi, P. Guruprasad
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Abstract

Abstract The van der Waals (vdW) force, along with the electrostatic force and the first-order fringing field effect, act on the electrostatically actuated nano-cantilever (EANC) when the gap between the deformable electrode and the stationary electrode is less than 20 nanometres. Because of the vdW force, the EANC can undergo a pull-in phenomenon even without the electrostatic force when the nano-cantilever length exceeds its detachment length. The vdW force also results in a significant reduction in static pull-in instability parameters of the slender EANC compared to corresponding parameters obtained when this force is absent. This paper aims to augment the stable static travel range (i.e., the pull-in displacement) of the aforementioned EANC having a length close to its detachment length by varying the beam width. The beam width is assumed to vary in linear and parabolic manners and is controlled using a width variation parameter in each case. The governing equation of the Bernoulli-Euler beam theory and the Galerkin’s technique are utilised to obtain the weighted residual statement (GWRS). The GWRS is utilised to obtain static pull-in instability parameters of referential prismatic and variable-width EANCs. Pull-in instability parameters of variable-width EANCs, for various values of width variation parameters and the initial gap between electrodes, have been obtained. The aforementioned results have been validated with corresponding results obtained by three-dimensional finite element simulations performed using COMSOL Multiphysics®. Compared to the referential prismatic EANC, a significant augmentation in the pull-in displacement of the variable-width EANC has been obtained.
考虑范德华力的影响,增大了静电驱动细长纳米悬臂梁的稳定静态行程范围
当可变形电极与固定电极之间的间隙小于20纳米时,范德华力(vdW)、静电力和一阶边场效应共同作用于静电驱动纳米悬臂梁(EANC)。由于vdW力的存在,当纳米悬臂梁长度超过其脱离长度时,即使在没有静电力的情况下,EANC也会发生拉入现象。与没有该力时获得的相应参数相比,vdW力还导致细长EANC的静态拉入不稳定性参数显着降低。本文旨在通过改变光束宽度来增加上述长度接近其脱离长度的EANC的稳定静态行程范围(即拉入位移)。假定光束宽度以线性和抛物线方式变化,并在每种情况下使用宽度变化参数进行控制。利用伯努利-欧拉梁理论的控制方程和伽辽金技术得到了加权残差陈述。利用GWRS获得了参考棱镜和变宽eacs的静态拉入失稳参数。得到了不同宽度变化参数和不同初始电极间隙下变宽度电弧的拉入失稳参数。上述结果已与COMSOL Multiphysics®三维有限元模拟得到的相应结果进行了验证。与参考棱柱形EANC相比,变宽EANC的拉入位移显著增加。
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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