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Coupled torsion-bending dynamic analysis of gear-rotor-bearing system with eccentricity fluctuation

机译:偏心波动的齿轮-转子-轴承系统扭弯耦合动力学分析

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摘要

This study performs a coupled torsion-bending vibration responses of a gear-rotor-bearing system, which has taken time varying mesh stiffness, nonlinear bearing force and gear eccentricity into account. A 16 DOF nonlinear dynamic model of gear-rotor-rolling bearing transmission system with bending-torsion coupling is established to obtain the dynamic response to the changes of different parameters. Based on the Runge-Kutta numerical method, the dynamics of the system is investigated, which describes torsional and bending vibration properties of the system more comprehensively. The vibration responses of the gear-rotor-bearing system are discussed, and the effects of gear eccentricity and rotational speed on the system are investigated in detail. The results show that gear eccentricity and rotational speed have influences on the meshing state of gear teeth, the vibration amplitudes, the frequency multiplication and random frequency components. When the system is in a lower rotational speed, the eccentricity has greater effects on the vibration response. The proposed model and numerical results provide a useful source of reference for engineers in designing and vibration controlling such systems.
机译:这项研究执行了齿轮-转子-轴承系统的扭转-弯曲耦合振动响应,其中考虑了随时间变化的啮合刚度,非线性轴承力和齿轮偏心率。建立了具有弯扭耦合的齿轮-转子-滚动轴承传动系统的16自由度非线性动力学模型,以获得对不同参数变化的动态响应。基于Runge-Kutta数值方法,研究了系统的动力学特性,它更全面地描述了系统的扭转和弯曲振动特性。讨论了齿轮-转子-轴承系统的振动响应,并详细研究了齿轮偏心率和转速对系统的影响。结果表明,齿轮的偏心距和转速对齿轮的啮合状态,振动幅度,倍频和随机频率分量都有影响。当系统处于较低转速时,偏心率对振动响应的影响更大。提出的模型和数值结果为工程师设计和振动控制此类系统提供了有用的参考来源。

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