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Roller Profile Development for an Axially Loaded, Single Row Spherical Roller Bearing in an Oscillating Application

机译:振动应用中轴向加载的单列调心滚子轴承的滚子轮廓开发

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Typically it is not recommended to use a single row spherical roller bearing in an application in which there are significant axial loads. The use of these bearings in a less than optimal customer application can be driven by the need for a high load capacity within a limited geometric envelope. Specialized roller profiles can be developed that eliminate high contact stresses on the roller ends that can lead to the premature failure of the bearing. In this paper, analytical results are presented for the roller to raceway contact stress of four different roller profiles with a given load applied to the bearing. The profiles considered are single transverse radius, double transverse radii, and optimized symmetric and asymmetric. The piecewise logarithmic profiles developed are applied to a barrel roller in this paper, but a generalized method is developed such that the profile could be applied to any type of roller-cylindrical, barrel, hourglass, or tapered. The analysis results for two of the profiles are validated by dynamic testing performed within RBC's Corporate Test Laboratory on a three axis, hydraulic, computer controlled test rig. The bearing inner ring is oscillated while the bearing is subjected to simultaneous radial and axial loads. The control software allows the monitoring of radial displacement and bearing torque during testing. The test results correlate very well with the analytical results. The displacement and torque readouts are shown to predict the onset of raceway fatigue and spalling for one of the roller configurations before testing is complete and the bearing is disassembled.
机译:通常,在轴向载荷较大的应用中,建议不要使用单列球面滚子轴承。在有限的几何尺寸范围内对高负载能力的需求可能会驱使这些轴承在不太理想的客户应用中使用。可以开发出专门的滚子轮廓,以消除滚子端部上的高接触应力,该应力可能导致轴承过早损坏。在本文中,给出了在轴承施加给定载荷的情况下,四种不同的滚子轮廓的滚子对滚道接触应力的分析结果。考虑的轮廓是单横向半径,双横向半径以及优化的对称和不对称。本文将开发的分段对数轮廓应用于桶形滚子,但是开发了一种通用方法,使得该轮廓可以应用于任何类型的圆柱形,桶形,沙漏形或圆锥形的滚子。通过在RBC公司测试实验室内在三轴,液压,计算机控制的测试台上进行的动态测试,验证了两个配置文件的分析结果。在轴承同时承受径向和轴向载荷的同时,轴承内圈也会振动。控制软件允许在测试过程中监视径向位移和轴承扭矩。测试结果与分析结果非常相关。显示的位移和扭矩读数可预测在完成测试和拆卸轴承之前,其中一种辊配置的滚道疲劳和剥落的发生。

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