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An experimental study of the dynamic characteristics of the catenary-pantograph interface in high speed trains

  • Dynamics, Vibration, and Control
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Abstract

The dynamic characteristics of the catenary-pantograph interface in high-speed trains are evaluated. During a test run signals from accelerometers, load cells, and strain gauges attached to various parts of the pantograph assembly are collected and processed. The signals are analyzed in both the time and frequency domains to determine the dynamic characteristics of the catenary-pantograph interface constituting the critical part of the current collection system of the high-speed train. It is found that there are major frequency components of the pantograph motion at the interface that shift in direct proportion to the train speed as well as components that are stationary in the frequency domain such as the 8.5 Hz component representing the fundamental resonant mode of the panhead assembly. The contact force at the interface shows that while the mean contact force stays almost invariant, the fluctuating component is significantly dependent on the filtering frequency applied to the accelerometer signal during estimation of the inertia force of the panhead. An important implication of the finding is that analytical or numerical investigations based on lumped element models of the pantograph may provide accurate predictions on mean values of the contact force at the catenary-pantograph interface, but are inherently limited in estimating high-frequency fluctuations in the contact force. Since the ratio of the fluctuating portion to the steady-state portion (i.e., the mean value) increases with increased train speed, the predictive capacity of the investigations based on numerical simulations diminishes with increasing train speed.

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References

  1. Y. S. Choi and D. H. Joung, Numerical analysis of dynamic response of catenary/pantograph system in high-speed train,SKKU J. of Science and Technology 42(2) (1991) 377–390.

    Google Scholar 

  2. S. H. Park, J. S. Kim, S. Hur, J. H. Kyung and D. H. Song, On dynamic characteristics of TGV-K pantograph-catenary system, Proc. KSR (1999) 176–184.

  3. M. Arnold and B. Simeon, Pantograph and catenary dynamics: a benchmark problem and its numerical solutions,Applied Numerical Mathematics 34 (2000) 345–352.

    Article  MATH  MathSciNet  Google Scholar 

  4. Y. H. Kim, Y. K. Park, S. M. Kim and H. S. Roh, Wave propagation characteristics along a catenary and arbitrary boundary conditions,Trans. KSME 16(11) (1992) 2059–2071.

    Google Scholar 

  5. J. S. Kim and S. H. Park, Dynamic simulation of KTX catenary system for changing design parameter,J. KSNVE 11(2) (2001) 346–353.

    Google Scholar 

  6. W. M. Kim, J. T. Kim, J. S. Kim and J. W. Lee, A numerical study on dynamic characteristics of a catenary,KSME Int. J. 17(6) (2003) 860–869.

    Google Scholar 

  7. W. Seering, K. Armbruster, C. Veselyd and D. Wormley, Experimental and analytical study of pantograph dynamics,J. Dynamic Systems, Measurement and Control 113 (1993) 242–247.

    Article  Google Scholar 

  8. T. J. Park, C. S. han and J. H. Jang, Dynamic sensitivity analysis for the pantograph of a high-speed rail vehicle,J. Sound and Vibration 266 (2003) 235–260.

    Article  Google Scholar 

  9. H. S. Han, J. H. Kyung, D. H. Song and J. C. Bae, Concept design of the pantograph for high speed trains, Proc. KSR (1998) 337–344.

  10. D. S. Farr, H. C. Hall and A. L. William, A dynamic model for studying the behaviour of the overhead equipment used in electric railway traction, Proc. IEE No. 3530U (1961) 421–434.

  11. T. A. Willetts and D. R. edwards, DYnamic-model studies of overhead equipment for electric railway traction, Proc. IEE. 133(4) (1966) 690–696.

    Google Scholar 

  12. P. Delfosse and B. Sauvestre, Measurement of contact pressure between pantograph and catenary, French Railway Review 1(6) (1983) 497–505.

    Google Scholar 

  13. Manabe, K. High speed contact performance of a catenary-pantograph system. JSME Int. J. 32(2) (1989) 200–205.

    Google Scholar 

  14. S. I. Seo, C. S. Park, Y. H. Cho, K. Y. Choi, J. Y. Mok and B. B. Kang, Test and evaluation of the pantograph for Korean high speed train, KRRI Report (2003).

  15. J. S. Kim, The effect of train motion on dynamic characteristics of current collection system, J. KSR 9(1) (2006) 18–22.

    Google Scholar 

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Correspondence to Jung Soo Kim.

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Kim, J.S. An experimental study of the dynamic characteristics of the catenary-pantograph interface in high speed trains. J Mech Sci Technol 21, 2108–2116 (2007). https://doi.org/10.1007/BF03177470

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  • DOI: https://doi.org/10.1007/BF03177470

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