Thermal contact resistance for stationary and moving heat sources in angular contact ball bearings

Sebastian Cabezas, György Hegedűs, Péter Bencs
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Abstract

Sliding friction is a common tribological effect that occurs between the contact surfaces of the inner components (inner race, outer race and balls) of a spindle rolling bearing during operation. This friction generally generates heat, which can affect the performance of the rolling bearing. To date, numerous studies have assumed that the contact surface between the inner components of the bearing is circular and stationary. While this assumption has yielded adequate results, it is not sufficient in the case of angular contact ball bearings, where the contact surfaces are elliptical and could be treated as either stationary or moving heat sources. This paper presents solutions for both, stationary and moving heat sources for elliptical contact surfaces in a spindle rolling bearing. The primary objective is to find the thermal contact resistances which are dependent on the shape of contact, the loads, the rotational speed and the material properties thereof, applying the mathematical expressions developed by Muzychka and Yovanovich. These expressions were used to calculate various thermal resistances, providing results applicable to the analysis of thermal models in spindle rolling elements. Through finite element analysis (FEA) performed in Ansys Workbench, the stationary and moving heat sources were compared, finding the heat distribution along the elements of the bearing. The findings herein are suitable for the creation of thermal networks in rolling bearings, which are essential to predict their thermal behaviour.
角接触球轴承中固定和运动热源的热接触电阻
滑动摩擦是一种常见的摩擦学效应,发生在主轴滚动轴承的内部件(内滚圈、外滚圈和球)的接触面之间。这种摩擦通常会产生热量,从而影响滚动轴承的性能。迄今为止,许多研究都假设轴承内部部件之间的接触面是圆形和静止的。虽然这个假设已经产生了足够的结果,但在角接触球轴承的情况下,它是不够的,因为接触表面是椭圆形的,可以被视为静止或移动的热源。本文给出了主轴滚动轴承椭圆接触面的静止热源和运动热源的求解方法。主要目标是利用Muzychka和Yovanovich开发的数学表达式,找出与接触形状、载荷、转速及其材料特性有关的热接触电阻。利用这些表达式计算了各种热阻,所得结果适用于主轴滚动体的热模型分析。通过在Ansys Workbench中进行有限元分析(FEA),对静止热源和运动热源进行了比较,得到了沿轴承各部件的热量分布。本文的研究结果适用于在滚动轴承中创建热网络,这对于预测其热行为至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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