A direct method for the extension of FastSim under non-Hertzian contact conditions

被引:5
|
作者
Gomez-Bosch, J. [1 ]
Giner-Navarro, J. [1 ]
Carballeira, J. [1 ]
Baeza, L. [1 ]
机构
[1] Univ Politecn Valencia, I2MB, Valencia, Spain
关键词
Wheel-rail contact; non-Hertzian contact; rolling contact; FastSim; tangential contact; creepage; WHEEL-RAIL CONTACT; NON-ELLIPTIC CONTACT; MECHANICS;
D O I
10.1080/00423114.2022.2120022
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
In wheel-rail contact mechanics, there coexist different models characterised by their ability to reproduce the real phenomenon and the time associated with computing the solution. In simulation of the vehicle dynamics, the increase in the computational performance places researchers close to a horizon in which it is possible to implement the most realistic theories (Variational Theory or finite elements), although at present the use of these models is mainly limited to offline calculations, far from real-time simulation. In this context, this work presents a tangential contact theory that is an intermediate point between simplified models (unable to model non-Hertzian contact) and more realistic models (whose complexity triggers simulation times). The tangential contact model proposed is based on the FastSim algorithm, whose precision comes from the algorithm convergence to the results of an exact adhesion theory (i.e. when creepages tend to zero). The impossibility of considering Kalker's Linear Theory as an adjustment method when the hypotheses of the Hertzian model are not fulfilled leads to the adoption of the Kalker's steady-state CONTACT version in adhesion conditions. The calculations presented through the proposed algorithm provide errors for creep forces lower than 4% with computational times one order lower than the Variational Theory.
引用
收藏
页码:2551 / 2569
页数:19
相关论文
共 50 条
  • [41] Elastic contact between a cylindrical surface and a flat surface - A non-Hertzian model of multi-asperity contact
    Rajendrakumar, PK
    Biswas, SK
    MECHANICS RESEARCH COMMUNICATIONS, 1996, 23 (04) : 367 - 380
  • [42] Improving the robustness of non-Hertzian wheel–rail contact model for railway vehicle dynamics simulation
    Yu Sun
    Feifan Shi
    Sen Zhang
    Haiyan Wang
    Mengting Xing
    Multibody System Dynamics, 2023, 59 : 193 - 237
  • [43] THE AVAILABLE METHODS TO CALCULATE THE WHEEL RAIL FORCES IN NON-HERTZIAN CONTACT PATCHES AND RAIL DAMAGING
    PASCAL, JP
    SAUVAGE, G
    VEHICLE SYSTEM DYNAMICS, 1993, 22 (3-4) : 263 - 275
  • [44] Effect of gauge corner lubrication on wheel/rail non-Hertzian contact and rail surface damage on the curves
    Yang, Yunfan
    Guo, Xinru
    Ling, Liang
    Wang, Kaiyun
    Zhai, Wanming
    Acta Mechanica Sinica/Lixue Xuebao, 2022, 38 (03):
  • [45] Improving the robustness of non-Hertzian wheel-rail contact model for railway vehicle dynamics simulation
    Sun, Yu
    Shi, Feifan
    Zhang, Sen
    Wang, Haiyan
    Xing, Mengting
    MULTIBODY SYSTEM DYNAMICS, 2023, 59 (02) : 193 - 237
  • [46] Analysis and Comparison of Different Wheel-rail Non-hertzian Rolling Contact Approaches in Railway Turnout
    Ma X.
    Wang P.
    Xu J.
    Feng Q.
    Jixie Gongcheng Xuebao/Journal of Mechanical Engineering, 2019, 55 (18): : 95 - 103
  • [47] Effect of gauge corner lubrication on wheel/rail non-Hertzian contact and rail surface damage on the curves
    Yang, Yunfan
    Guo, Xinru
    Ling, Liang
    Wang, Kaiyun
    Zhai, Wanming
    ACTA MECHANICA SINICA, 2022, 38 (03)
  • [48] Shakedown Analysis of Evolving Non-Hertzian Rolling Contact Using a Semi-analytical Numerical Model
    Yaswanth Sai Jetti
    Alison C. Dunn
    Tribology Letters, 2021, 69
  • [49] Shakedown Analysis of Evolving Non-Hertzian Rolling Contact Using a Semi-analytical Numerical Model
    Jetti, Yaswanth Sai
    Dunn, Alison C.
    TRIBOLOGY LETTERS, 2021, 69 (04)
  • [50] Application of multi-level multi-integration to contact problems - Part 1: non-Hertzian contact in rolling bearings
    Natsumeda, S
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART J-JOURNAL OF ENGINEERING TRIBOLOGY, 1999, 213 (J1) : 63 - 80