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Dynamic Identification of MEMS by Eigensensitivity and Newmark Simulation

机译:基于特征灵敏度和Newmark仿真的MEMS动态识别

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摘要

The study of dynamic behavior is essential for a large number of applications involving microelec-tromechanical systems (MEMS). Although solutions for static analysis are reaching maturity the simulation of dynamic behavior is still a demanding problem. As analytical solutions for coupled-field problems are hard to be obtained, numerical methods are preferred. In this work, three different numerical strategies for physical level dynamic analysis of MEMS are reported and evaluated. The first approach is based on the Newmark direct integration method, modified to consider the electromechanical coupled-field effects of MEMS. A second method describes the system dynamic behavior through the modal solution of an eigenvalue problem. The numerical algorithms for these two methods are inserted in the software MefLab++. MefLab++ is an object-oriented computer code (written in C++) for numerical simulation of physical problems. The third dynamic simulation is carried out with the ANSYS commercial software by using its transducer element TRANS 126 to model the electrical field. The three methods are applied to simple beams and results are compared. The tested methods showed to be suitable for computing the natural frequencies of MEMS structures. Simulation with the ANSYS reduced order element TRANS 126 was faster while MefLab++ displacements values were more precise.
机译:对于涉及微机电系统(MEMS)的大量应用,动态行为的研究至关重要。尽管静态分析的解决方案已经成熟,但是动态行为的模拟仍然是一个棘手的问题。由于难以获得耦合场问题的解析解,因此首选数值方法。在这项工作中,对MEMS的物理级动态分析的三种不同的数值策略进行了报告和评估。第一种方法基于Newmark直接积分方法,经过修改以考虑MEMS的机电耦合场效应。第二种方法通过特征值问题的模态描述来描述系统动态行为。这两种方法的数值算法已插入软件MefLab ++中。 MefLab ++是面向对象的计算机代码(用C ++编写),用于物理问题的数值模拟。使用ANSYS商业软件通过使用其换能器元件TRANS 126对电场进行建模,可以进行第三次动态仿真。将这三种方法应用于简单梁并比较结果。测试方法表明适用于计算MEMS结构的固有频率。使用ANSYS降阶元素TRANS 126进行的仿真速度更快,而MefLab ++位移值更精确。

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