首页> 外文会议>Proceedings of the ASME Design Engineering Division 2003 >PHYSICS-BASED MODELING OF BEARING BASED ON FINITE ELEMENT MODELING TECHNIQUE
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PHYSICS-BASED MODELING OF BEARING BASED ON FINITE ELEMENT MODELING TECHNIQUE

机译:基于有限元建模技术的基于物理的轴承建模

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The physical condition of rolling element ball bearings can be estimated using analytical and empirical methods or predicted grossly using artificial intelligence techniques such as expert systems, fuzzy logic, and neural network, etc. When the operational condition of a bearing is dynamic and there is a need to determine the actual stresses and tolerances of the bearing concisely, then it is wiser to develop a physics-based model of the bearing using finite element modeling (FEM) techniques. Applying such FEM techniques, one can virtually examine any of the possible mechanical characteristics of different types and sizes of ball bearings operating under different speeds and environmental conditions. Understanding such mechanical characteristics is crucial to accurate fault diagnosis of the bearings in practice. For example, such mechanical characteristics can be digitized or mathematically modeled in order to reduce the computational extent of the analysis as well as serve as a reference look-up table for better and faster fault diagnosis purposes than current practices. It can also be applied to determine the remaining useful life of the ball bearing more precisely. In this paper, we present our technical approach toward the development of a physics-based finite element model of rolling element bearings and provide some examples based on results of this research effort.
机译:滚动轴承的物理状态可以通过分析和经验方法进行估算,也可以使用人工智能技术(如专家系统,模糊逻辑和神经网络等)进行粗略的预测。需要简明地确定轴承的实际应力和公差,那么使用有限元建模(FEM)技术开发基于物理学的轴承模型是比较明智​​的。应用这样的有限元技术,人们可以虚拟地检查在不同的速度和环境条件下工作的不同类型和尺寸的球轴承的任何可能的机械特性。在实践中,了解此类机械特性对于准确诊断轴承至关重要。例如,可以对此类机械特性进行数字化或数学建模,以减少分析的计算范围,并用作参考查找表,以实现比当前实践更好,更快的故障诊断目的。它也可以用于更精确地确定滚珠轴承的剩余使用寿命。在本文中,我们介绍了开发基于物理原理的滚动轴承的有限元模型的技术方法,并基于此研究成果提供了一些示例。

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