首页> 外文会议>International Mechanical Engineering Congress and Exposition 2007 >AN EFFICIENT NUMERICAL SCHEME TO DETERMINE THE PULL-IN PARAMETERS OF AN ELECTROSTATIC MICRO-ACTUATOR WITH CONTACT TYPE NONLINEARITY
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AN EFFICIENT NUMERICAL SCHEME TO DETERMINE THE PULL-IN PARAMETERS OF AN ELECTROSTATIC MICRO-ACTUATOR WITH CONTACT TYPE NONLINEARITY

机译:确定接触类型非线性静电微执行器推入参数的有效数值方法

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In this article, we present an efficient numerical scheme based on the Rayleigh-Ritz method to determine the pull-in parameters of electrostatically actuated microbeams exploiting contact type nonlinearity. A case of an electrostatically actuated cantilevered microbeam is first analyzed using the Rayleigh-Ritz energy technique. The deflection of the microbeam is approximated by a polynomial trial function. The principle of the stationary potential energy leads to a highly nonlinear algebraic equation, which is solved to determine the deflected shape of the microbeam. A novel voltage iteration algorithm is implemented to determine the critical voltage at which the pull-in occurs. The analysis is then extended to the case of cantilever beam making use of the contact type nonlinearity to exhibit an extended travel range. The present case consists of a compression spring getting engaged at the cantilever tip at the critical point where the pull-in occurs. An increase in both travel range and pull-in voltage is observed with the introduction of the compression spring. A performance index is suggested, which combines the gain in the travel range together with the concomitant increase in the pull-in voltage. This index is used to determine the critical bound for the choice of the stiffness of the newly introduced compression member.
机译:在本文中,我们提出了一种基于瑞利-里兹(Rayleigh-Ritz)方法的有效数值方案,以利用接触类型的非线性来确定静电驱动微束的引入参数。首先使用Rayleigh-Ritz能量技术分析静电驱动的悬臂微梁的情况。微束的偏转通过多项式试验函数来近似。静态势能原理导致了一个高度非线性的代数方程,可通过求解该方程来确定微束的挠曲形状。实现了一种新颖的电压迭代算法来确定发生吸合的临界电压。然后将分析扩展到悬臂梁的情况,利用接触类型的非线性来显示扩展的行程范围。目前的情况是由一个压缩弹簧在发生拉入的临界点处的悬臂尖端处啮合而成。引入压缩弹簧后,可观察到行程范围和吸合电压均增加。建议使用性能指标,该指标将行程范围内的增益与引入电压的随之增加相结合。该指数用于确定选择新引入的压缩构件的刚度的临界范围。

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