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System Modeling of a MEMS Vibratory Gyroscope and Integration to Circuit Simulation

机译:MEMS振动陀螺仪的系统建模及其与电路仿真的集成

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摘要

Recently, consumer applications have dramatically created the demand for low-cost and compact gyroscopes. Therefore, on the basis of microelectromechanical systems (MEMS) technology, many gyroscopes have been developed and successfully commercialized. A MEMS gyroscope consists of a MEMS device and an electrical circuit for self-oscillation and angular-rate detection. Since the MEMS device and circuit are interactively related, the entire system should be analyzed together to design or test the gyroscope. In this study, a MEMS vibratory gyroscope is analyzed based on the system dynamic modeling; thus, it can be mathematically expressed and integrated into a circuit simulator. A behavioral simulation of the entire system was conducted to prove the self-oscillation and angular-rate detection and to determine the circuit parameters to be optimized. From the simulation, the operating characteristic according to the vacuum pressure and scale factor was obtained, which indicated similar trends compared with those of the experimental results. The simulation method presented in this paper can be generalized to a wide range of MEMS devices.
机译:最近,消费者应用极大地产生了对低成本和紧凑型陀螺仪的需求。因此,基于微机电系统(MEMS)技术,已经开发了许多陀螺仪并成功地商业化。 MEMS陀螺仪由MEMS器件和用于自激和角速率检测的电路组成。由于MEMS器件和电路相互关联,因此应一起分析整个系统,以设计或测试陀螺仪。在这项研究中,基于系统动力学建模分析了MEMS振动陀螺仪。因此,它可以数学表示并集成到电路模拟器中。进行了整个系统的行为仿真,以证明自振荡和角速率检测并确定要优化的电路参数。通过仿真,获得了根据真空压力和比例因子的工作特性,与实验结果相比,趋势相似。本文提出的仿真方法可以推广到各种MEMS器件。

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