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Frontiers of Mechanical Engineering

ISSN 2095-0233

ISSN 2095-0241(Online)

CN 11-5984/TH

Postal Subscription Code 80-975

2018 Impact Factor: 0.989

Front. Mech. Eng.    2014, Vol. 9 Issue (3) : 242-248    https://doi.org/10.1007/s11465-014-0305-y
RESEARCH ARTICLE
Modelling of dynamic contact length in rail grinding process
Shaodan ZHI1,Jianyong LI1,*(),A. M. ZAREMBSKI2
1. School of Mechanical, Electronic and Control, Beijing Jiaotong Unversity, Beijing 100044, China
2. Railroad Engineering Program, Department of Civil and Environmental Engineering, University of Delaware, Newark 19711, USA
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Abstract

Rails endure frequent dynamic loads from the passing trains for supporting trains and guiding wheels. The accumulated stress concentrations will cause the plastic deformation of rail towards generating corrugations, contact fatigue cracks and also other defects, resulting in more dangerous status even the derailment risks. So the rail grinding technology has been invented with rotating grinding stones pressed on the rail with defects removal. Such rail grinding works are directed by experiences rather than scientifically guidance, lacking of flexible and scientific operating methods. With grinding control unit holding the grinding stones, the rail grinding process has the characteristics not only the surface grinding but also the running railway vehicles. First of all, it’s important to analyze the contact length between the grinding stone and the rail, because the contact length is a critical parameter to measure the grinding capabilities of stones. Moreover, it’s needed to build up models of railway vehicle unit bonded with the grinding stone to represent the rail grinding car. Therefore the theoretical model for contact length is developed based on the geometrical analysis. And the calculating models are improved considering the grinding car’s dynamic behaviors during the grinding process. Eventually, results are obtained based on the models by taking both the operation parameters and the structure parameters into the calculation, which are suitable for revealing the process of rail grinding by combining the grinding mechanism and the railway vehicle systems.

Keywords rail grinding      contact length      dynamic model      Hamiltonian system      grinding stone      rail grinding car     
Corresponding Author(s): Jianyong LI   
Online First Date: 14 August 2014    Issue Date: 10 October 2014
 Cite this article:   
Shaodan ZHI,Jianyong LI,A. M. ZAREMBSKI. Modelling of dynamic contact length in rail grinding process[J]. Front. Mech. Eng., 2014, 9(3): 242-248.
 URL:  
https://academic.hep.com.cn/fme/EN/10.1007/s11465-014-0305-y
https://academic.hep.com.cn/fme/EN/Y2014/V9/I3/242
Fig.1  Position diagram of grinding stones
Fig.2  Flat contact model for rail grinding
Fig.3  Contact model considering cutting depth
Fig.4  Hamiltonian model for rail grinding car
Parameter nameValue
Grinding car’s passing speed v/(km?h-1)v3km/h
Rotating speed of Grinding Stone ω/(r?min-1)ω3600r?min-1
Cutting radius of grinding stone R/mm75mmR125mm
Tab.1  Parameters of operation
Fig.5  Contact length change with ω
Fig.6  Contact length change with v
Fig.7  Contact length change with R
Parameter nameValue
Car weightmc/kg32995
Bogie weightmb/kg2600
Bogie moment inertiaJb/(kg?m2)3700
Damper coefficientc1,c2,c3/(N?m-1?s)2×104
Spring coefficientk1,k2,k3/(kN?m-1)176.4, 176.4, 1176
Distance between wheel and grinding stone lr/mm7300
Tab.2  Parameters of grinding car structure
Fig.8  Dynamic behaviors of the bogie, car and stone
Fig.9  Dynamic contact length of rail grinding stone
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