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Finite Element Analysis of the Rolling-Sliding Contact of Vibrationally Loaded Bearings based on a Micro Friction Model

机译:基于微摩擦模型的振动轴承滑动接触有限元分析

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摘要

Mixed friction acting in a rolling contact increases the v. Mises equivalent stress and shifts the maximum towards the surface. Tangential stresses are superimposed to the stress distribution. The resulting position of the maximum v. Mises stress depends on the magnitude of the friction coefficient and is located directly on the surface from values of about 0.25 upwards. The impact of three-dimensional machine vibrations on rolling bearings in operation can cause severe mixed friction running conditions. Residual stress distributions measured on indentation-free raceways indicate high friction coefficients of up to greater than 0.25. The surfaces reveal smoothing of the finishing structure but no adhesive wear. The simulation of the vibrationally loaded rolling-sliding contact is based on the tribological model of localized friction coefficient. This approach avoids seizing by allowing for increased friction only in intermittently changing subareas of the contact at low sliding speed. The macroscopic friction coefficient, meeting a mixing rule, does not exceed 0.1. The finite element method (FEM) is used for the stress analysis. In the first step, a simplified FEM model involves a circumferentially oriented band of high friction coefficient from 0.2 to 0.5 within a cylindrical roller contact. The resulting depth distributions of the v. Mises equivalent stress during overrolling and the corresponding residual stresses are evaluated below the inner ring raceway of the bearing. The features of the FEM model are discussed in detail. The increased sliding friction in the band shifts the maximum of the v. Mises equivalent stress to the surface. Compressive residual stresses are induced in the edge zone. Depending on the applied Hertzian pressure, an additional subsurface peak occurs. First results of the finite element analysis are presented.
机译:滚动接触中的混合摩擦会增加v。Mises等效应力并使最大值移向表面。切向应力叠加在应力分布上。最大v。Mises应力的最终位置取决于摩擦系数的大小,并且从大约0.25向上的值直接位于表面上。三维机器振动对运行中的滚动轴承的影响会导致严重的混合摩擦运行条件。在无凹痕的滚道上测得的残余应力分布表明高达0.25以上的高摩擦系数。表面显示出整理结构的光滑度,但没有粘合剂磨损。基于局部摩擦系数的摩擦学模型,对振动载荷下的滑动接触进行了仿真。该方法通过仅在低滑动速度下间歇地改变触点的子区域时才允许增加摩擦来避免卡死。满足混合规则的宏观摩擦系数不超过0.1。有限元方法(FEM)用于应力分析。第一步,简化的FEM模型包括在圆柱滚子接触面内从0.2到0.5的高摩擦系数的圆周定向带。在滚动过程中所产生的v。Mises等价应力的深度分布以及相应的残余应力在轴承的内圈滚道下方进行评估。有限元模型的特点进行了详细讨论。带中增加的滑动摩擦使v的最大值偏移了等效应力到表面。在边缘区域中产生压缩残余应力。根据施加的赫兹压力,会出现一个额外的地下峰值。给出了有限元分析的初步结果。

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