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Design and Simulation of a MEMS Control Moment Gyroscope for the Sub-Kilogram Spacecraft

机译:亚公斤级航天器的MEMS控制力矩陀螺仪的设计与仿真

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摘要

A novel design of a microelectromechanical systems (MEMS) control moment gyroscope (MCMG) was proposed in this paper in order to generate a torque output with a magnitude of 10−6 N·m. The MCMG consists of two orthogonal angular vibration systems, i.e., the rotor and gimbal; the coupling between which is based on the Coriolis effect and will cause a torque output in the direction perpendicular to the two vibrations. The angular rotor vibration was excited by the in-plane electrostatic rotary comb actuators, while the angular gimbal vibration was driven by an out-of-plane electrostatic parallel plate actuator. A possible process flow to fabricate the structure was proposed and discussed step by step. Furthermore, an array configuration using four MCMGs as an effective element, in which the torque was generated with a phase difference of 90 degrees between every two MCMGs, was proposed to smooth the inherent fluctuation of the torque output for a vibrational MCMG. The parasitic torque was cancelled by two opposite MCMGs with a phase difference of 180 degrees. The designed MCMG was about 1.1 cm × 1.1 cm × 0.04 cm in size and 0.1 g in weight. The simulation results showed that the maximum torque output of a MCMG, the resonant frequency of which was approximately 1,000 Hz, was about 2.5 × 10−8 N·m. The element with four MCMGs could generate a torque of 5 × 10−8 N·m. The torque output could reach a magnitude of 10−6 N·m when the frequency was improved from 1,000 Hz to 10,000 Hz. Using arrays of 4 × 4 effective elements on a 1 kg spacecraft with a standard form factor of 10 cm × 10 cm × 10 cm, a 10 degrees attitude change could be achieved in 26.96 s.
机译:本文提出了一种新颖的微机电系统控制力矩陀螺仪(MCMG)设计,以产生大小为10 N·m的扭矩输出。 MCMG由两个正交的角振动系统组成,即转子和万向架;两者之间的耦合基于科里奥利效应,将导致在垂直于两个振动的方向上输出扭矩。角内转子振动由平面内静电旋转梳状致动器激励,而角万向架振动由平面外静电平行板致动器驱动。提出并讨论了制造该结构的可能工艺流程。此外,提出了使用四个MCMG作为有效元件的阵列构造,其中在每两个MCMG之间以90度的相位差产生转矩,以使振动MCMG的转矩输出的固有波动变平滑。寄生转矩被两个相对的MCMG抵消,相位差为180度。设计的MCMG尺寸约为1.1厘米×1.1厘米×0.04厘米,重量为0.1克。仿真结果表明,其共振频率约为1,000 Hz的MCMG的最大转矩输出约为2.5×10 -8 N·m。具有四个MCMG的元件可产生5×10 -8 N·m的扭矩。当频率从1,000 Hz提高到10,000 Hz时,扭矩输出可能达到10 -6 N·m。在1 kg航天器上使用4×4有效元素的阵列,标准外形尺寸为10 cm×10 cm×10 cm,可以在26.96 s内实现10度的姿态变化。

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