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Nonlinear Dynamic Analysis of an Electrostatically Actuated Cylindrical Micro-Beam Subjected to Cross Fluid Flow

机译:交叉流体流动的静电驱动圆柱微梁的非线性动力学分析

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This work investigates the nonlinear dynamic behavior of an electrostatically actuated clamped-clamped cylindrical micro-beam subjected to vortex induced vibrations (VIV). Lift and drag forces are the two basic flow-induced factors affecting the dynamics of the micro-beam under fluid flow which are neglected in micro-structures immersed in stationary fluids. The electrostatically actuated micro-beam is modelled using Timoshenko beam theory and the impact of the fluid cross-flow is accounted for by considering its resultant force elements comprising inertia, lift and drag force vectors. In addition, the size dependency effect on the nonlinear dynamics of the micro-beam is studied based on the Modified Couple Stress Theory (MCST). The governing nonlinear equations are solved using the Galerkin and step-by-step linearization method to evaluate the response of the coupled structure to a combined voltage excitation plus fluid flow. Response of the micro-beam to different input voltages in the presence of fluid velocities are investigated and it is shown that the range and intensity of the lock-in regime is effectively controlled by the input voltage and fluid-to-beam density ratio.
机译:该工作研究了经过涡旋诱导振动(VIV)的静电致动夹紧夹紧圆柱微束的非线性动态行为。升力和拖曳力是影响在浸入固定流体中的微结构下忽略的流体流动下微梁动力学的两个基本流动诱导的因素。静电致动的微束使用Timoshenko光束理论建模,并且通过考虑其所得的惯性,提升和拖动力矢量来占据流体交叉流的影响。另外,基于修改的耦合应力理论(MCST)研究了对微梁非线性动力学的尺寸依赖性效应。使用Galerkin和逐步的线性化方法解决了控制非线性方程,以评估耦合结构与组合电压激发加流体流动的响应。研究了微梁在存在流体速度存在下的不同输入电压的响应,并且示出了通过输入电压和流体到束密度比有效地控制锁定状态的范围和强度。

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