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Microvibrations induced by a cantilevered wheel assembly with a soft-suspension system

机译:具有软悬架系统的悬臂车轮组件引起的微振动

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摘要

Microvibration management onboard spacecraft with high stability requirements has drawn increasing interest from engineers and scientists, and this paper discusses a reaction wheel design that allows a significant reduction of mid- to high-frequency microvibrations and that has been practically implemented in industry. Disturbances typically induced by mechanical systems onboard a spacecraft (especially rotating devices such as reaction wheel assemblies and momentum wheel assemblies) can severely degrade the performance of sensitive instruments. Traditionally, wheel-induced high-frequency (over 100-200 Hz) vibrations, generated by a combination of phenomena from bearing noise to dynamic amplifications due to internal resonances, are especially difficult to control. In this paper, the dynamic behavior of a newly designed wheel assembly, with a cantilevered flywheel configuration supported by a soft-suspension system, is investigated. The wheel assembly's mathematical model is developed and later verified with vibration tests. Wheel-assembly-induced lateral and axial microvibrations are accurately measured using a seismic-mass microvibration measurement system, which represents an alternative to typical microvibration measurement setups. Finally, the performance of this wheel assembly in terms of microvibration emissions is compared with a traditional design (with a rigid suspension) through comparison of frequency spectra, and it is shown that this design produces significantly lower vibrations at high frequency. Copyright © 2010 by Zhe Zhang.
机译:具有高稳定性要求的航天器上的微振动管理引起了工程师和科学家的越来越多的兴趣,本文讨论了一种反作用轮设计,该设计可显着减少中高频微振动,并且已在工业中得到实际应用。通常由航天器上的机械系统(尤其是旋转设备,例如反作用轮组件和动量轮组件)引起的干扰会严重降低灵敏仪器的性能。传统上,由轴承噪声到由于内部共振引起的动态放大的现象组合产生的车轮感应高频振动(超过100-200 Hz)特别难以控制。在本文中,研究了一种新设计的车轮组件的动力学行为,该组件具有悬架飞轮结构,并由软悬架系统支撑。车轮组件的数学模型得到开发,随后通过振动测试进行了验证。车轮质量引起的横向和轴向微振动可以使用地震质量微振动测量系统进行精确测量,这是典型的微振动测量设置的替代方案。最后,通过比较频谱,将该轮组件在微振动排放方面的性能与传统设计(带有刚性悬架)进行了比较,结果表明,这种设计在高频下产生的振动大大降低。张哲(Zhe Zhang)版权所有©2010。

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