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A novel comprehensive approach to feedback control of membrane displacement in radio frequency micro-electromechanical switches

机译:射频微机电开关中膜位移反馈控制的新型综合方法

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In this work, a novel feedback control technique for MEMS switch membrane is presented. Due to difficulties associated with measurement of membrane displacement, the capacitor current is used as the controller feedback signal. System identification is utilized to construct a transfer function relating Membrane displacement to capacitor current. Accelerating electrostatic pulse is utilized to accelerate the membrane at the start of the closing stage while a two degree-of-freedom, proportional-integral-derivative control is implemented and tuned to attain soft landing of the membrane on the electrode. The proposed technique eliminates membrane impact bouncing, reduces switch closing time, and improves the durability and reliability of the switch. The technique also improves the membrane transient response during pull-in and release stages. Simulation of the structural model dynamics shows good agreement with experimental results. The proposed technique achieved 200% increase in switch closing speed, 100% reduction in impact bouncing, 75% reduction in release overshoot, and an average of 55% reduction in membrane settling time at zero electrostatic voltage. The proposed model is benchmarked against experimental data, while the control technique is validated via simulation. (C) 2014 Elsevier B.V. All rights reserved.
机译:在这项工作中,提出了一种用于MEMS开关膜的新型反馈控制技术。由于与膜位移的测量相关的困难,电容器电流被用作控制器反馈信号。系统识别用于构建将膜位移与电容器电流相关的传递函数。在闭合阶段开始时,利用加速的静电脉冲来加速膜,同时实现并调整了两个自由度的比例积分微分控制,以实现膜在电极上的软着陆。所提出的技术消除了薄膜的冲击跳动,减少了开关的闭合时间,并提高了开关的耐用性和可靠性。该技术还改善了拉入和释放阶段的膜瞬态响应。结构模型动力学的仿真表明与实验结果吻合良好。所提出的技术使开关闭合速度提高了200%,冲击弹跳降低了100%,释放过冲降低了75%,在零静电电压下的膜沉降时间平均降低了55%。所提出的模型以实验数据为基准,而控制技术通过仿真得到了验证。 (C)2014 Elsevier B.V.保留所有权利。

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