Hertzian Contact Stress Modeling in Railway Bearings for Assorted Load Conditions and Geometries

Author:

Mason Michael A.1,Cartin Charles P.2,Shahidi Parham1,Fetty Mark W.1,Wilson Brent M.3

Affiliation:

1. Amsted Rail Company, Inc., Petersburg, VA

2. Virginia Commonwealth University, Richmond, VA

3. Amsted Rail Company, Inc., Granite City, IL

Abstract

Increasing freight car loads demand higher performance tapered roller bearings. As the stress state on railway bearing applications continues to increase, further advancement in the modeling tools and methods used for subsurface contact stress evaluations are needed. Heat treat specifications and contact geometries for railway bearings were originally developed for ideal load conditions. However, in railroad applications, tapered roller bearings are exposed to a vast range of load conditions that are seldom perfect. Moreover, when comparing global rail markets, there are often differences in bearing loads, railcar wear conditions, maintenance practices, and reliability versus utilization expectations. Advanced modeling techniques need to be developed by bearing designers in order to meet the specific needs of each individual rail market. Prior research has shown that subsurface stresses, resulting from rolling contact, are the primary factor in the development of fatigue cracks in railway bearings. In addition, finite element modeling software has previously been used to analyze Hertzian contact stresses under rolling contact. Recent advancements in the technology and computational power of finite element methods can be used to numerically analyze more detailed simulations of complex geometries and biased load conditions in railway bearings. These improvements in the tapered roller bearing modeling methodology are necessary to determine the material, heat treat specifications, and geometry required to meet the demands of specific railway bearing applications. Furthermore, the specific risks associated with some common railway bearing design and modeling assumptions will be evaluated. An exploratory list of these assumptions include: line versus point contact, load deflection factor, zero contact angle, rigid body assumptions, linear material behavior, neglect for overload, and uniform loading on the bearing. Emphasis will be placed on potential improvements in the theoretical and finite element prediction of surface and subsurface stresses in railway bearings under rolling contact with a review of prior research on the subject.

Publisher

American Society of Mechanical Engineers

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Fatigue Performance of Bearing Rollers Manufactured by Laser Powder Bed Fusion;Bearing and Transmission Steels Technology;2024-01-01

2. The refined strength calculation and optimization of the inner geometry of cylindrical bearing units;Eastern-European Journal of Enterprise Technologies;2020-06-30

3. Based on ANSYS crown tapered rolling bearings dynamics simulation analysis;Journal of Intelligent & Fuzzy Systems;2018-02-27

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