Gao Yang, Huang Libin, Ding Xukai, Li Hongsheng
School of Instrument Science and Engineering, Southeast University, Nanjing 210096, China.
Key Laboratory of Micro-Inertial Instruments and Advanced Navigation Technology, Ministry of Education, Nanjing 210096, China.
Sensors (Basel). 2018 Mar 30;18(4):1037. doi: 10.3390/s18041037.
This paper presents the design and implementation of a dual-mass MEMS gyroscope with high shock resistance by improving the in-phase frequency of the gyroscope and by using a two-stage elastic stopper mechanism and proposes a Simulink shock model of the gyroscope equipped with the two-stage stopper mechanism, which is a very efficient method to evaluate the shock resistance of the gyroscope. The structural design takes into account both the mechanical sensitivity and the shock resistance. The design of the primary structure and the analysis of the stopper mechanism are first introduced. Based on the expression of the restoring force of the stopper beam, the analytical shock response model of the gyroscope is obtained. By this model, the shock response of the gyroscope is theoretically analyzed, and the appropriate structural parameters are obtained. Then, the correctness of the model is verified by finite element (FE) analysis, where the contact collision analysis is introduced in detail. The simulation results show that the application of the two-stage elastic stopper mechanism can effectively improve the shock resistance by more than 1900 g and 1500 g in the - and -directions, respectively. Finally, experimental verifications are carried out by using a machete hammer on the micro-gyroscope prototype fabricated by the deep dry silicon on glass (DDSOG) technology. The results show that the shock resistance of the prototype along the -, - and -axes all exceed 10,000 g. Moreover, the output of the gyroscope can return to normal in about 2 s.
本文通过提高陀螺仪的同相频率并采用两级弹性止动器机制,介绍了一种具有高抗冲击性的双质量MEMS陀螺仪的设计与实现,并提出了配备两级止动器机制的陀螺仪的Simulink冲击模型,这是评估陀螺仪抗冲击性的一种非常有效的方法。结构设计兼顾了机械灵敏度和抗冲击性。首先介绍了主要结构的设计和止动器机制的分析。基于止动梁恢复力的表达式,得到了陀螺仪的解析冲击响应模型。通过该模型,从理论上分析了陀螺仪的冲击响应,并获得了合适的结构参数。然后,通过有限元(FE)分析验证了模型的正确性,其中详细介绍了接触碰撞分析。仿真结果表明,两级弹性止动器机制的应用可分别在x和y方向上有效提高抗冲击性,超过1900 g和1500 g。最后,使用大砍刀锤对采用深干法玻璃上硅(DDSOG)技术制造的微陀螺仪原型进行了实验验证。结果表明,原型在x、y和z轴方向上的抗冲击性均超过10000 g。此外,陀螺仪的输出在约2 s内可恢复正常。