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Coupled microvibration analysis of a reaction wheel assembly including gyroscopic effects in its accelerance

机译:反应轮组件的耦合微振动分析,包括陀螺效应的加速

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摘要

This article discusses the coupled microvibration analysis of a cantilever configured Reaction Wheel Assembly with soft-suspension system. A RWA-seismic mass coupled microvibration measurement system is presented and its model validated against test results. The importance of the RWA driving point accelerances in coupled microvibration analysis is thoroughly discussed. A RWA accelerance measurement system has been designed to measure the driving point accelerances in both static (flywheel not spinning) and dynamic (flywheel spinning) conditions. Analytically, RWA static accelerance is obtained by frequency response analysis of a finite element model. The traditionally ignored gyroscopic effects in the accelerances are included in the model and their effects with respect to traditional models are shown both theoretically and experimentally. Although at high angular speed, when nonlinearities in the microvibrations prevent an accurate simulation, it is shown that the predicted microvibrations match more closely with the test results when considering gyroscopic effects in RWA accelerances than those predicted using the traditional method. The presented coupled microvibration analysis method is also very efficient in practice and is applicable in an industrial environment. © 2013 Elsevier Ltd. All rights reserved.
机译:本文讨论了悬臂配置的带有软悬架系统的反作用轮组件的耦合微振动分析。提出了一种RWA-地震质量耦合微振动测量系统,并根据测试结果验证了其模型。深入讨论了RWA驱动点加速度在耦合微振动分析中的重要性。 RWA加速度测量系统已被设计为在静态(飞轮不旋转)和动态(飞轮旋转)条件下测量驱动点加速度。通过分析有限元模型的频率响应,可以得到RWA静态加速度。模型中包括了加速度中传统上忽略的陀螺效应,并且在理论上和实验上都显示了它们相对于传统模型的效应。尽管在高角速度下,当微振动中的非线性阻碍了精确的模拟时,与传统方法预测的结果相比,当考虑陀螺仪对RWA加速度的影响时,预测的微振动与测试结果更加匹配。提出的耦合微振动分析方法在实践中也是非常有效的,可应用于工业环境。 ©2013 ElsevierLtd。保留所有权利。

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