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用于延长接触持续时间的垂直驱动微机电系统惯性开关中固定电极的设计与优化

Design and Optimization of a Stationary Electrode in a Vertically-Driven MEMS Inertial Switch for Extending Contact Duration.

作者信息

Xu Qiu, Yang Zhuo-Qing, Fu Bo, Bao Yan-Ping, Wu Hao, Sun Yun-Na, Zhao Meng-Yuan, Li Jian, Ding Gui-Fu, Zhao Xiao-Lin

机构信息

National Key Laboratory of Science and Technology on Micro/Nano Fabrication, School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.

Huaihai Industrial Group Co., Ltd., Changzhi 046012, China.

出版信息

Sensors (Basel). 2017 Mar 7;17(3):527. doi: 10.3390/s17030527.

Abstract

A novel micro-electro-mechanical systems (MEMS) inertial microswitch with a flexible contact-enhanced structure to extend the contact duration has been proposed in the present work. In order to investigate the stiffness of the stationary electrodes, the stationary electrodes with different shapes, thickness , width , and length were designed, analyzed, and simulated using ANSYS software. Both the analytical and the simulated results indicate that the stiffness increases with thickness and width , while decreasing with an increase of length , and it is related to the shape. The inertial micro-switches with different kinds of stationary electrodes were simulated using ANSYS software and fabricated using surface micromachining technology. The dynamic simulation indicates that the contact time will decrease with the increase of thickness and width , but increase with the length , and it is related to the shape. As a result, the contact time decreases with the stiffness of the stationary electrode. Furthermore, the simulated results reveal that the stiffness changes more rapidly with and compared to . However, overlarge dimension of the whole microswitch is contradicted with small footprint area expectation in the structure design. Therefore, it is unreasonable to extend the contact duration by increasing the length excessively. Thus, the best and most convenient way to prolong the contact time is to reduce the thickness of the stationary electrode while keeping the plane geometric structure of the inertial micro-switch unchanged. Finally, the fabricated micro-switches with different shapes of stationary electrodes have been evaluated by a standard dropping hammer system. The test maximum contact time under 288 g acceleration can reach 125 µs. It is shown that the test results are in accordance with the simulated results. The conclusions obtained in this work can provide guidance for the future design and fabrication of inertial microswitches.

摘要

在本工作中,提出了一种具有柔性接触增强结构以延长接触持续时间的新型微机电系统(MEMS)惯性微开关。为了研究固定电极的刚度,设计了具有不同形状、厚度、宽度和长度的固定电极,使用ANSYS软件进行了分析和模拟。分析和模拟结果均表明,刚度随厚度和宽度的增加而增大,随长度的增加而减小,并且与形状有关。使用ANSYS软件对具有不同类型固定电极的惯性微开关进行了模拟,并采用表面微加工技术进行了制造。动态模拟表明,接触时间将随厚度和宽度的增加而减小,但随长度的增加而增加,并且与形状有关。结果,接触时间随固定电极的刚度而减小。此外,模拟结果表明,刚度随厚度和宽度的变化比随长度的变化更快。然而,整个微开关尺寸过大与结构设计中期望的小占位面积相矛盾。因此,过度增加长度来延长接触持续时间是不合理的。因此,延长接触时间的最佳且最方便的方法是在保持惯性微开关平面几何结构不变的情况下减小固定电极的厚度。最后,使用标准落锤系统对制造的具有不同形状固定电极的微开关进行了评估。在288 g加速度下的测试最大接触时间可达125 μs。结果表明测试结果与模拟结果一致。本工作中获得的结论可为惯性微开关的未来设计和制造提供指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/99e8/5375813/0c810a66c781/sensors-17-00527-g001.jpg

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