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Investigation of Turbulence Effects on the Nonlinear Vibration of a Rigid Rotor Supported by Finite Length 2-Lobe and Circular Bearings

机译:有限长度2-叶和圆形轴承支撑刚性转子非线性振动的湍流效应研究

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摘要

This study investigated the effect of turbulence on the nonlinear vibration of a symmetrical rigid rotor supported by two identical journal bearings. The bearings consisted of various length to diameter (L/D) ratio circular and 2-lobe bearings with differing pad preloads. Two turbulent (Ng-Pan-Elrod and Constantinescu model) and one laminar Reynolds equations were selected for comparison, and they were solved using a finite difference method to obtain nonlinear bearing forces. The nonlinear equations of motion for the rotor-bearing system were solved using a shooting method and arclength continuation to obtain limit cycles for each bearing configuration. Floquet multiplier analysis was then utilized to identify the stability of the obtained limit cycles. For the cases of the circular and 2-lobe bearing without pad preload, the turbulent Reynolds equations yielded a lower onset speed of instability and L/D ratio at which the bifurcation type changed from supercritical to subcritical than the laminar Reynolds equation. However, at higher pad preloads (preloads of 0.25 or 0.5), the turbulence effects increased the onset speed of instability, especially for L/D ratios>0.7, and only supercritical bifurcation was observed. For all bearing configurations, the ratio of the limit cycle whirl frequency to shaft rotational speed for both turbulence bearing models was higher than that of the laminar bearing model, and the Ng-Pan-Elrod turbulence model always generated lower onset speed of instability than the Constantinescu model.
机译:该研究研究了湍流对由两个相同轴颈轴承支撑的对称刚性转子的非线性振动的影响。轴承由各种长度(L / D)比率圆形和2瓣轴承,具有不同的垫预载荷。选择了两个湍流(NG-PAN-ELROD和康宁曲面模型)和一个层流雷诺方程进行比较,并且使用有限差分法解决了以获得非线性承载力。使用拍摄方法和arclencth继续求解转子系统的非线性方程,以获得每个轴承配置的限制循环。然后利用Foquet乘法器分析来识别所获得的极限循环的稳定性。对于没有垫预载的圆形和2个叶片轴承的情况,湍流雷诺方程产生了不稳定性的起始速度和L / D比,其中分叉类型从超临界变为亚临界比层状雷诺等式。然而,在更高的垫预载荷(预载荷为0.25或0.5),湍流效应增加了不稳定性的起始速度,特别是对于L / D比例> 0.7,并且仅观察到超临界分叉。对于所有轴承配置,湍流轴承模型的极限周期旋转频率与轴转速的比率高于层流轴承模型的比率,并且NG-PAN-ELROD湍流模型始终产生的不稳定性速度低于Constantinescu模型。

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