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Modelling and testing of a soft suspension design for a reaction/momentum wheel assembly

机译:用于反应/动量轮组件的软悬架设计的建模和测试

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The micro-vibrations generated by equipment onboard spacecraft can significantly affect the performance of sensitive payloads; in particular mid to high frequency band micro-vibrations, are difficult to model and control. This study focuses on the micro-vibrations emitted by a wheel assembly (WA) implementing a soft (flexible) suspension system. Both the soft and a conventional rigid design were tested using a Seismic Micro-Vibration Measurement System (SMVMS). A NewtonEuler method was employed to develop an analytical model of the WA and the test system, which was then used to model and analyze the micro-vibrations emitted by the reaction/momentum WA, due to the static and dynamic imbalance of the flywheel. When compared with the traditional rigid design, the soft suspension system is shown to effectively reduce the high frequency disturbances, and the mathematical model effectively represents the fundamental harmonic disturbances. In addition, the results confirm that the SMVMS shows relatively high measurement accuracy.
机译:航天器设备产生的微振动会严重影响敏感载荷的性能;尤其是中高频频段的微振动,很难建模和控制。这项研究的重点是实施软(柔性)悬架系统的车轮组件(WA)发出的微振动。使用地震微振动测量系统(SMVMS)对软性设计和常规刚性设计进行了测试。采用NewtonEuler方法开发了WA和测试系统的分析模型,然后由于飞轮的静态和动态失衡,将其用于对反应/动量WA发出的微振动进行建模和分析。与传统的刚性设计相比,软悬架系统可以有效地减少高频干扰,而数学模型则可以有效地表示基本的谐波干扰。此外,结果证实了SMVMS显示出相对较高的测量精度。

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