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궤도틀림 특성이 철도차량 주행성능에 미치는 영향 해석

Dynamic Analysis of the Influence of the Track Irregularity on the Running Performance of the Railway Vehicle

Journal of the Korean Society for Precision Engineering 2017;34(12):881-887.
Published online: December 1, 2017

1 우송대학교 철도차량시스템학과

1 Department of Railroad Vehicle System Engineering, Woosong University

#E-mail: bbkang@wsu.ac.kr, TEL: +82-42-629-6693
• Received: October 1, 2017   • Revised: November 13, 2017   • Accepted: November 26, 2017

Copyright © The Korean Society for Precision Engineering

This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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Citations

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  • The characteristics of hunting motion of the vehicle system under lateral track irregularities: spatial coherence and bifurcation
    Peng Lu, Xi Wang, Yu Hou
    Nonlinear Dynamics.2026;[Epub]     CrossRef

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Dynamic Analysis of the Influence of the Track Irregularity on the Running Performance of the Railway Vehicle
J. Korean Soc. Precis. Eng.. 2017;34(12):881-887.   Published online December 1, 2017
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Dynamic Analysis of the Influence of the Track Irregularity on the Running Performance of the Railway Vehicle
J. Korean Soc. Precis. Eng.. 2017;34(12):881-887.   Published online December 1, 2017
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Dynamic Analysis of the Influence of the Track Irregularity on the Running Performance of the Railway Vehicle
Image Image Image Image Image Image Image Image Image Image Image Image Image Image
Fig. 1 Irregularity axes system for lateral irregularity (YI), Vertical irregularity (ZI) and cross level (XLI)
Fig. 2 Vehicle model of a typical four axled passenger coach with a maximum operating speed of 200 km/h
Fig. 3 Wheel rail model
Fig. 4 Lateral force (RMS) according to the change of the wavelength and amplitude of the lateral irregularity
Fig. 5 Car body lateral acceleration (RMS) according to the change of the wavelength and amplitude of the lateral irregularity
Fig. 6 Car body vertical acceleration (RMS) according to the change of the wavelength and amplitude of the lateral irregularity
Fig. 7 Bogie lateral acceleration (RMS) according to the change of the wavelength and amplitude of the lateral irregularity
Fig. 8 Derailment coefficient (RMS) according to the change of the wavelength and amplitude of the lateral irregularity
Fig. 9 Lateral force (RMS) according to the change of the wavelength and amplitude of the vertical irregularity
Fig. 10 Car body lateral acceleration (RMS) according to the change of the wavelength and amplitude of the vertical irregularity
Fig. 11 Car body vertical acceleration (RMS) according to the change of the wavelength and amplitude of the vertical irregularity
Fig. 12 Bogie lateral acceleration (RMS) according to the change of the wavelength and amplitude of the vertical irregularity
Fig. 13 Derailment coefficient (RMS) according to the change of the wavelength and amplitude of the vertical irregularity
Fig. 14 Comparison of the dynamic performance parameters obtained under the different combination of the lateral, vertical and cross-level irregularities
Dynamic Analysis of the Influence of the Track Irregularity on the Running Performance of the Railway Vehicle
Parameter Value
Wheel br-p8
Rail BS113a-20
Axle Load 150 KN
Wheel Diameter 1000 mm
Track Gage 1435 mm
Wavelength λ (m) Amplitude A(mm)
7 14 21 28
5 7 14 21 28
10 7 14 21 28
20 7 14 21 28
30 7 14 21 28
70 7 - - -
100 7 - - -
Case Irregularity Amplitude (mm)
1 Vertical 7
2 Lateral 7
3 Vertical Lateral 7
4 Vertical Lateral 14
5 Vertical Lateral 21
6 Vertical Lateral Cross-level 7
7 Vertical Lateral Cross-level 14
8 Vertical Lateral Cross-level 21
V L V+L V+L+C
Lateral Force (kN) 0.32 16.20 15.89 14.85
Car body Lateral Acceleration (m/s2) 0.04 0.59 0.57 0.42
Car body Vertical Acceleration (m/s2) 3.64 0.02 3.35 3.69
Bogie Lateral Acceleration (m/s2) 0.50 4.17 4.80 6.65
Derailment Coefficient 0.01 0.32 0.92 0.42
Table 1 Contact parameters
Table 2 Irregularity modeling parameters
Table 3 Irregularity modeling parameters for investigating combination effect (Wavelength: 20 m)
Table 4 Combination effect of irregularity (Wavelength: 20 m, Amplitude: 21 mm)