首页> 外文会议>ASME international design engineering technical conferences;Computers and information in engineering conference;Conference on mechanical vibration and noise >LIMIT-CYCLE ANALYSIS OF THREE DIMENSIONAL RIGID ROTOR/SHAFT/AUTOBALANCER SYSTEM WITH SYMMETRIC BEARING SUPPORT
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LIMIT-CYCLE ANALYSIS OF THREE DIMENSIONAL RIGID ROTOR/SHAFT/AUTOBALANCER SYSTEM WITH SYMMETRIC BEARING SUPPORT

机译:具有对称轴承支持的三维刚性转子/轴/自动平衡器系统的极限循环分析

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In recent years, there has been much interest in the use of automatic balancing devices (ABDs) in rotating machinery. Autobalances consist of several freely moving eccentric balancing masses mounted on the rotor, which, at certain operating speeds, act to cancel rotor imbalance. This "automatic balancing" phenomena occurs as a result of nonlinear dynamic interactions between the balancer and rotor wherein the balancer masses naturally synchronize with the rotor with appropriate phase to cancel the imbalance. However, due to inherent nonlinearity of the autobalancer, the potential for other undesirable non-synchronous limit-cycle behavior exists. In such situations, the balancer masses do not reach their desired synchronous balanced positions resulting in increased rotor vibration. Although several researchers have explored limit-cycle behavior of single-plane ABD-rotor systems, a limit-cycle analysis of a full three dimensional rigid ABD/shaft/rotor considering transverse deflection, out-plane tilting and gyroscopic effects has not been investigated. This paper considers an approximate harmonic analytical solution to describe the limit-cycle behavior in a three dimensional rigid rotor/ABD system. Essentially, the solutions presented here capture both in-plane transverse deflection and out-plane tilting motion of the system under the limit-cycle condition. Here the whirl speed of the ABD balancer masses is determined via the solution of a non-linear characteristic equation. Also, based upon the limit-cycle solutions, the limit-cycle stability is assessed via a perturbation and Floquet analysis exploring three main parameters; ABD balancer mass, ABD damping, and axial location of ABD along the shaft. The coexistence of the stable balanced synchronous condition and undesired non-synchronous limit-cycle is studied. It is found that for certain combinations of ABD parameters and rotor speeds, the non-synchronous limit-cycle can be made unstable thus guaranteeing global asymptotic stability of the synchronous balanced condition. Finally, the analysis is validated through numerical simulation. The findings in this paper yield important insights for researchers wishing to utilize automatic balancing devices in rotor/shaft systems and limit-cycle mitigation.
机译:近年来,在旋转机械中使用自动平衡装置(ABD)引起了人们的极大兴趣。自动平衡由安装在转子上的几个可自由移动的偏心平衡块组成,这些平衡块在某些运行速度下可消除转子的不平衡。这种“自动平衡”现象是由于平衡器和转子之间发生非线性动态相互作用而产生的,其中平衡器质量自然以适当的相位与转子同步,以消除不平衡。但是,由于自动平衡器固有的非线性,存在其他不合需要的非同步极限循环行为的可能性。在这种情况下,平衡块无法达到所需的同步平衡位置,从而导致转子振动增加。尽管一些研究人员已经研究了单平面ABD转子系统的极限循环行为,但尚未研究考虑横向偏斜,平面外倾角和陀螺效应的完整三维刚性ABD /轴/转子的极限循环分析。本文考虑了一种近似的谐波解析解来描述三维刚性转子/ ABD系统的极限循环行为。本质上,在极限循环条件下,此处介绍的解决方案可以捕获系统的平面内横向偏转和平面外倾斜运动。在此,ABD平衡块的旋转速度是通过非线性特征方程的解确定的。同样,基于极限环解,通过扰动和Floquet分析评估了三个主要参数来评估极限环稳定性。 ABD平衡器质量,ABD阻尼和ABD沿轴的轴向位置。研究了稳定平衡同步条件与非期望非同步极限环的共存。发现对于ABD参数和转子速度的某些组合,可以使非同步极限环变得不稳定,从而保证了同步平衡条件的全局渐近稳定性。最后,通过数值模拟对分析进行了验证。本文的发现为希望在转子/轴系统中使用自动平衡装置和减轻极限循环的研究人员提供了重要的见识。

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