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Spherical Roller Bearing Simulation Model with Localized Defects

机译:具有局部缺陷的球形滚子轴承仿真模型

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Since Spherical Roller Bearings (SRBs) have high load capacity and are self-aligning, they are seeing increasing use in the rotating machinery. Typical applications are paper machines, steel rolling, marine equipment, geared transmissions and modern high power wind turbines. Therefore, it is becoming increasingly important to study the dynamic behavior of SRBs and know the excitations caused by internal imperfections. Extensive research has been conducted to study the dynamics of ball bearings, while studies related to spherical roller bearings are short-shrifted. In this paper a three degree of freedom dynamic model of spherical roller bearing that takes into account the inner and outer race surface defects is introduced. In the model, bearing forces and deflections are calculated as a function of contact deformation and bearing geometry parameters according to nonlinear Hertzian contact theory; taking radial clearance into account. Two defect cases are simulated: an elliptical surface concavity on the inner race, and an elliptical surface concavity on the outer race. In case of elliptical surface concavity, it is assumed that the contact between the roller and inner and outer races is continuous as each bearing roller passes over the defect, and contact stiffness in the defect area varies as a function of the defect's contact geometry. The equations of motion were solved numerically. Simulation results demonstrate that the SRB model is sufficiently accurate for typical rotor bearing systems. Numerical results also show that each local defect excites vibration at a frequencies corresponding to the bearing defect frequencies, and thus, makes it possible to identify the location of the defect (i.e. inner or outer race) from the simulated frequency spectrum. Numerical simulation is carried out successfully for a full rotor-bearing system to demonstrate the application of developed SRB model in a real world analysis. Finally, simulation results are verified and compared to measured data obtained from an equivalent rotor bearing system with a predefined local defect. Comparison shows a good agreement between the simulated and measured results.
机译:由于球形滚子轴承(SRB)具有高负荷能力并且自对准,因此它们在旋转机械中看到不断使用。典型的应用是造纸机,钢轧,船用设备,齿轮传输和现代大功率风力涡轮机。因此,研究SRB的动态行为并了解由内部缺陷引起的激励越来越重要。已经进行了广泛的研究,以研究滚珠轴承的动态,而与球形滚子轴承有关的研究是短暂的。本文介绍了考虑内部和外血表面缺陷的三维自由度的球形滚子轴承的动态模型。在模型中,根据非线性赫索联系理论计算轴承力和偏转作为接触变形和轴承几何参数的函数;考虑到径向清除。模拟了两种缺陷案例:内部种族上的椭圆形表面凹陷,以及在外部群体上的椭圆形表面凹陷。在椭圆形表面凹面的情况下,假设辊子和内梯之间的接触是连续的,因为每个轴承辊通过缺陷,并且缺陷区域中的接触刚度随着缺陷的接触几何形状而变化。运动的方程在数值上解决。仿真结果表明,SRB模型对于典型的转子轴承系统足够准确。数值结果还表明,每个局部缺陷在与轴承缺陷频率对应的频率下激发振动,因此,可以从模拟频谱识别缺陷(即内部或外圈)的位置。数值模拟成功地进行全转子轴承系统,以证明开发的SRB模型在真实世界分析中的应用。最后,验证仿真结果,并与从具有预定义局部缺陷的等效转子轴承系统获得的测量数据进行验证。比较显示了模拟和测量结果之间的良好一致性。

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