![]() |
个人信息Personal Information
教授
博士生导师
硕士生导师
性别:女
毕业院校:东北大学
学位:博士
所在单位:机械工程学院
学科:机械制造及其自动化. 微机电工程. 机械电子工程
办公地点:西部校区机械学院新大楼6009房间
电子邮箱:duliqun@dlut.edu.cn
A low-g MEMS inertial switch with a novel radial electrode for uniform omnidirectional sensitivity
点击次数:
论文类型:期刊论文
发表时间:2018-02-01
发表刊物:SENSORS AND ACTUATORS A-PHYSICAL
收录刊物:SCIE、EI
卷号:270
页面范围:214-222
ISSN号:0924-4247
关键字:Low-g omnidirectional inertial switch; Novel radial electrode; Non-silicon surface micromachining; Thickness compensation; Anti-overload performance
摘要:A low-g MEMS inertial switch with uniform omnidirectional sensitivity is designed and fabricated for automotive airbags in this paper. The design objective acceleration of the switch is about 38g. By adopting the combination of Archimedes' spirals and a single circular proof mass as the mass-spring system, the switch can sense the applied accelerations from any radial directions in XOY plane. To obtain a good omnidirectional performance, a novel radial electrode with a spherical contact surface and novel serpentine springs is designed, and limitation blocks are beside it. The omnidirectional response of the switch is simulated and analyzed by ANSYS software. The simulated result indicates that the novel radial electrodes are conducive to achieve the uniform thresholds in all sensitive directions, and the switch can reach a reliable contact because of the novel serpentine spring. The switch is fabricated based on non silicon surface micromachining technology. To decrease the deviation of threshold acceleration induced by fabrication errors of crucial dimensions, a new method of "thickness compensation" is proposed. The fabricated prototypes were tested by the centrifuge device and dropping hammer. The switch can be triggered under an acceleration of about 40g from any directions in XOY plane and has an excellent anti-overload performance. (C) 2018 Elsevier B.V. All rights reserved.