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NONLINEAR ANALYSIS OF RUB IMPACT IN A THREE-DISK ROTOR AND CORRECTION VIA BEARING AND LUBRICANT ADJUSTMENT

机译:三盘转子上的橡胶撞击非线性分析及轴承调整和润滑校正

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Rubbing between rotating and stationary surfaces in turbomachinery can result in catastrophic failures if not caught quickly. Removing the rub impact can then often require time consuming and expensive solutions including field balancing or magnetic bearing systems. However, simple changes in bearing dynamics via bearing and lubricant adjustment could provide for a faster and cheaper alternative. In this work, a three-disk rotor was examined analytically for nonlinear rotordynamic behavior due to an unbalance-driven rub. The rotordynamic solution was obtained using nonlinear and steady state finite element models to demonstrate the effect of the rub impact on the dynamic response of the machine. A thermoelasto-hydrodynamic (TEHD) model of tilting pad journal bearing performance was also used to study the possible removal of the rub impact by making minor adjustments to bearing parameters including preload, clearance, pad orientation, and lubricant properties. Gas-expanded lubricants, tunable mixtures of synthetic oil and carbon dioxide that have been proposed as a means to provide control in bearing-rotor systems, were also considered for their possible role in controlling the rub. The TEHD model provided a range of bearing inputs to the rotor models in the form of stiffness and damping coefficients. Results from the rotordynamic analyses included an assessment of critical speeds, peak rotor displacements, and vibration characteristics. Individual bearing parameter adjustments were found to have smaller, though still significant effects on the response of the machine. Overall it was found that by adjusting a combination of these bearing parameters that the peak displacement of the rotor could be reduced by large enough amounts to remove the rub impact in the machine, hence providing a simple approach to solving rub impact problems in rotating machinery caused by excessive vibration.
机译:如果不迅速发现涡轮机中旋转表面和静止表面之间的摩擦,可能会导致灾难性故障。因此,要消除摩擦影响,通常需要耗时且昂贵的解决方案,包括磁场平衡或磁轴承系统。但是,通过调整轴承和润滑剂来简单改变轴承的动力学特性可以提供一种更快,更便宜的选择。在这项工作中,由于不平衡驱动的摩擦,分析了三盘式转子的非线性转子动力学行为。使用非线性和稳态有限元模型获得了转子动力学解,以证明摩擦冲击对电机动态响应的影响。还使用倾斜垫轴颈轴承性能的热弹流体动力学(TEHD)模型,通过对轴承参数(包括预紧力,游隙,轴瓦方向和润滑剂性能)进行细微调整,来研究消除摩擦影响的可能性。还考虑了气体膨胀润滑剂,合成油和二氧化碳的可调节混合物,作为在轴承-转子系统中提供控制的一种手段,也被认为具有控制摩擦的作用。 TEHD模型以刚度和阻尼系数的形式向转子模型提供了一系列轴承输入。转子动力学分析的结果包括对临界速度,峰值转子位移和振动特性的评估。发现单独的轴承参数调整对机器的响应影响较小,尽管影响仍然很大。总的来说,发现通过调整这些轴承参数的组合,可以将转子的峰值位移减小足够大的量,以消除机械中的摩擦冲击,从而提供了一种解决旋转机械中的摩擦冲击问题的简单方法过度振动。

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