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Experimental and numerical study of an angular contact ball bearing vibration response with spall defect on the outer race

机译:外圈壁缺陷角接触球轴承振动响应的实验和数值研究

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摘要

Angular contact ball bearings are widely used in rotary machines for their combined loads capacity, i.e., simultaneously acting radial and axial loads. Spall defect is one of the most important potential failure modes of the rolling element bearings. The main motivation of this study is to achieve a true perception of the spall defect influence on the angular contact ball bearing to predict bearing failure. In this paper, simulation and experimental analysis are performed for an angular contact ball bearing with a spall defect in the outer race. At first, the bearings without and with outer race defect are modeled, and after extracting the governing equations, they are solved using function ODE45 in MATLAB. This function implements a Runge-Kutta method with a variable time step for efficient computation. Then the vibration response in different conditions of rotating speed and axial preload is simulated. A bearing test bench is designed to perform the experimental tests. The defect is contrived in the outer race of a healthy bearing, and the vibration signals at both conditions (healthy and defective) are collected. The spall defect in the outer race is considered to have a cylindrical shape to close the model to real conditions as much as possible. The results are then presented in the form of time-domain signals and fast Fourier transformations (FFT) graphs. The FFT results showed that defect in the outer race produces dominant peaks with a suitable similarity to each other in both simulations and experimental tests.
机译:角接触球轴承广泛用于旋转机器,用于它们的组合负载能力,即同时作用径向和轴向载荷。 Spall缺陷是滚动元件轴承最重要的潜在故障模式之一。本研究的主要动机是实现对角度接触球轴承的壁缺陷影响的真实感知,以预测轴承失效。在本文中,对角接触球轴承进行了模拟和实验分析,该角度接触球轴承在外部赛中具有壁缺陷。首先,模拟没有外部血液缺陷的轴承,并且在提取控制方程之后,使用Matlab中的功能ODE45来解决它们。此函数实现具有可变时间步骤的runge-kutta方法,以便有效计算。然后模拟旋转速度和轴向预载的不同条件下的振动响应。轴承测试台旨在执行实验测试。在健康轴承的外部竞争中,缺陷是收集的,并且在任何条件(健康和有缺陷)的振动信号都被收集。外部竞争中的壁缺陷被认为具有圆柱形形状,以尽可能地将模型关闭到真实条件。然后以时域信号和快速傅里叶变换(FFT)图的形式呈现结果。 FFT结果表明,在模拟和实验测试中,外部群体中的缺陷产生具有合适相似性的主导峰。

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