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Application of hybrid differential transformation/finite difference method to nonlinear analysis of micro fixed-fixed beam

机译:混合微分变换/有限差分法在微固定梁非线性分析中的应用

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摘要

Analyzing the dynamic response of electrostatic devices is problematic due to the complexity of the interactions between the electrostatic coupling effect, the fringing field effect and the nonlinear electrostatic force. To resolve this problem, this study presents an efficient computational scheme in which the nonlinear governing equation of the electrostatic device is obtained in accordance with Hamilton's principle and is then solved using a hybrid differential transformation/finite difference method. The feasibility of the proposed approach is demonstrated by modeling the dynamic responses of two micro fixed-fixed beams with lengths of 250 and 350 μm, respectively. The numerical results show that the pull-in voltage reduces as the beam length increases due to a loss in the structural rigidity. Furthermore, it is shown that the present results for the pull-in voltage deviate by no more than 0.75% from those derived in the literature using a variety of different schemes. Overall, the results presented in this study demonstrate that the proposed hybrid method represents a computationally efficient and precise means of obtaining detailed insights into the nonlinear dynamic behavior of micro fixed-fixed beams and similar micro-electromechanical systems (MEMS)-based devices.
机译:由于静电耦合效应,边缘场效应和非线性静电力之间相互作用的复杂性,分析静电器件的动态响应是有问题的。为了解决这个问题,本研究提出了一种有效的计算方案,其中根据汉密尔顿原理获得静电装置的非线性控制方程,然后使用混合差分变换/有限差分方法求解。通过对长度分别为250和350μm的两个微固定梁的动力学响应进行建模,证明了该方法的可行性。数值结果表明,由于结构刚度的损失,随着梁长度的增加,引入电压降低。此外,还表明,采用多种不同方案,吸合电压的当前结果与文献中得出的结果相差不超过0.75%。总体而言,本研究中提出的结果表明,所提出的混合方法代表了一种计算有效且精确的方法,可获取对微型固定梁和类似的基于微机电系统(MEMS)的设备的非线性动力学行为的详细了解。

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