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On the dynamic balancing of a planetary moving rotor using a passive pendulum-type device

机译:用无源摆型装置的行星移动转子的动态平衡

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The possibility of using self-balancing devices to reduce the vibration amplitudes in planetary moving rotors is investigated analytically using the averaging method for a partially strongly damped system. Self-balancing was shown to be effective for a planetary moving rotor in the overcritical speed domain. However, the centrifugal forces caused small vibrations of the pendulum balancers, which increased with the increase of the velocity of the planetary motion. The analytic results match the numeric simulations very well as long as the velocity of the planetary motion is sufficiently small. To avoid high amplitudes while passing through resonance, a special design of the switchable pendulums that are controlled by centrifugal force is suggested. This design utilizes the only stable stationary orientation of the pendulums in the undercritical domain to position them in an appropriate way before coming into resonance. The results obtained provide new possibilities for the design of self-balancing devices for high precision applications.
机译:利用用于部分强阻尼系统的平均方法,在分析地研究了使用自平衡装置来减小行星移动转子中的振动振动的可能性。显示自平衡对于过度临界速度结构域的行星移动转子有效。然而,离心力引起了摆平衡器的小振动,随着行星运动的速度的增加而增加。除了行星运动的速度足够小的情况下,分析结果非常匹配。为了避免通过共振的同时避免高幅度,提出了由离心力控制的可切换摆的特殊设计。该设计利用下临界领域中的摆锤唯一稳定的固定定向,以在进入共振之前以适当的方式定位它们。获得的结果为高精度应用的自平衡装置设计提供了新的可能性。

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