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Time-Efficient Quasi-Static Algorithm for Simulation of Complex Single-Sided Clamped Electrostatic Actuators

机译:省时的准静态算法,用于仿真复杂的单侧夹紧式电动执行机构

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This paper reports on a very time- and resource- efficient numerical algorithm for quasi-static modeling of the static behavior and the “quasi-static movement” of highly nonlinear electrostatic actuators with single-side clamped moving elements. The algorithm is capable of simulating prestressed materials and multicontact touching surfaces with complex geometries, including distance-keeping stoppers and thickness and material inhomogeneities of the moving parts. Thus, it is very suitable for predicting the behavior of actuators such as laterally moving curved-electrode actuators or vertically moving touch-mode or zipper actuators. In contrast to conventional, very time- and memory-consuming simulation methods such as finite-element analysis, the proposed algorithm—even if implemented in the slow script-language of MATLAB—takes only a fraction of a second to solve a complex problem, which makes it a very powerful design tool for parameter optimization of the actuator geometry. The reason for the efficiency of this algorithm is that its core is based on the one-dimensional mathematical description of a two-dimensional model geometry and that the differential equation is solved by a simple triple-integration for each iteration step, which is a method very suitable for thin-film single-side clamped moving elements. This paper describes the algorithm, analyzes its accuracy and its limitations, and reports on its performance as compared to other methods such as simplified analytical models for very basic structures, finite-element method (FEM) simulations of complex structures, and measurements of fabricated devices, including laterally moving microelectromechanical systems (MEMS) switches and vertically closing prestressed thin-film zipper actuators. Furthermore, the efficiency of the algorithm as a design tool was evaluated for the parameter optimization of electrostatic curved-electrode actuators. The algorithm's main application is -seen in the fast determination of suitable parameter sets for MEMS electrostatic actuators, but it cannot substitute for a more accurate FEM analysis to investigate a final design in great detail.1725
机译:本文报告了一种非常节省时间和资源的数值算法,用于对具有单侧夹紧运动元件的高度非线性静电执行器的静态行为和“准静态运动”进行准静态建模。该算法能够模拟具有复杂几何形状的预应力材料和多触点接触表面,包括保持距离的塞子以及运动部件的厚度和材料不均匀性。因此,它非常适合于预测诸如横向移动的弯曲电极致动器或垂直移动的触摸模式或拉链致动器的致动器的行为。与有限元分析之类的传统的,非常耗时且耗费内存的仿真方法相比,即使是在MATLAB的慢脚本语言中实现,所提出的算法也仅需不到一秒钟的时间即可解决一个复杂的问题,这使其成为用于优化执行器几何参数的非常强大的设计工具。该算法之所以有效,是因为该算法的核心基于二维模型几何的一维数学描述,并且对于每个迭代步骤,通过简单的三重积分来求解微分方程,这是一种方法。非常适合于薄膜单面夹紧式移动元件。本文介绍了该算法,分析了其准确性和局限性,并报告了与其他方法相比的性能,例如用于非常基本结构的简化分析模型,复杂结构的有限元方法(FEM)模拟以及制造设备的测量包括横向移动的微机电系统(MEMS)开关和纵向关闭的预应力薄膜拉链促动器。此外,评估了算法作为设计工具的效率,以优化静电弧形电极执行器的参数。该算法的主要应用是-快速确定适用于MEMS静电执行器的参数集,但它不能代替更精确的FEM分析来详细研究最终设计。1725

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