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Design and test of a soft suspension system for cantilevered momentum wheel assembly

机译:悬臂动量轮组件的软悬架系统的设计和测试

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This article concentrates on design and test of a soft suspension system for cantilevered momentum wheel assembly. First, a soft suspension system consisting of four folded beams was designed via the finite element method. Next, a mathematical model was employed to investigate the performance of the soft suspension cantilevered momentum wheel assembly. Finally, the natural frequencies of the cantilevered momentum wheel assembly were verified by 'hammering test' and the microvibrations produced were measured by a force-acceleration measurement system consisting of a Kistler table and several accelerometers. The results show that the natural frequencies and critical speed obtained by the experiment coincided well with the mathematical model; the soft suspension system can effectively isolate the disturbances produced by the rotor when the cantilevered momentum wheel assembly operates above the critical speed; and the maximum rotational speed increases from 4900 to 6400 r/min when the vertical beam of the soft suspension system is thickened from 0.0025 to 0.003m. Thus, the design method is valid to be used for the soft suspension system, and the soft suspension system is particularly efficient for the isolation of vibrations produced by the cantilevered momentum wheel assembly, the disturbance frequencies of which are mainly in the high-frequency range. In addition, the maximum rotational speed of the soft suspension cantilevered momentum wheel assembly can be improved by increasing the stiffness of the suspension system.
机译:本文主要研究悬臂动量轮组件的软悬架系统的设计和测试。首先,通过有限元方法设计了由四个折叠梁组成的软悬架系统。接下来,采用数学模型来研究软悬臂悬臂动量轮组件的性能。最后,通过“锤击测试”验证了悬臂式动量轮组件的固有频率,并通过一个由奇石乐工作台和多个加速度计组成的力加速度测量系统测量了产生的微振动。结果表明,实验获得的固有频率和临界速度与数学模型吻合良好。当悬臂式动量轮组件在临界转速以上运行时,软悬架系统可以有效地隔离转子产生的干扰;当软悬架系统的垂直梁从0.0025m增至0.003m时,最大转速从4900 r / min增加到6400 r / min。因此,该设计方法适用于软悬架系统,并且该软悬架系统对于隔离由悬臂动量轮组件产生的振动特别有效,悬臂动量轮组件的干扰频率主要在高频范围内。另外,可以通过增加悬架系统的刚度来改善软悬架悬臂动量轮组件的最大转速。

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