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Experimental modal analysis of railway concrete sleepers with cracks

  • Real, J.I. (Department of Transportation Engineering and Infrastructures, School of Civil Engineering, Technical University of Valencia) ;
  • Sanchez, M.E. (Department of Transportation Engineering and Infrastructures, School of Civil Engineering, Technical University of Valencia) ;
  • Real, T. (Department of Construction Engineering, Public Works and Urban Infrastructure, School of Engineering, University of Alicante, Campus de SantVicent del Raspeig) ;
  • Sanchez, F.J. (Railway Division of Precon S.A.U.) ;
  • Zamorano, C. (Foundation for the Research and Engineering in Railways)
  • Received : 2012.01.14
  • Accepted : 2012.08.09
  • Published : 2012.10.10

Abstract

Concrete sleepers are essential components of the conventional railway. As support elements, sleepers are always subjective to a variety of time-dependent loads attributable to the train operations, either wheel or rail abnormalities. It has been observed that the sleepers may deteriorate due to these loads, inducing the formation of hairline cracks. There are two areas along the sleepers that are more prone to crack: the central and the rail seat sections. Several non-destructive methods have been developed to identify failures in structures. Health monitoring techniques are based on vibration responses measurements, which help engineers to identify the vibration-based damage or remotely monitor the sleeper health. In the present paper, the dynamic effects of the cracks in the vibration signatures of the railway pre-stressed concrete sleepers are investigated. The experimental modal analysis has been used to evaluate the modal bending changes in the vibration characteristics of the sleepers, differentiating between the central and the rail seat locations of the cracks. Modal parameters changes of the 'healthy' and cracked sleepers have been highlighted in terms of natural frequencies and modal damping. The paper concludes with a discussion of the most suitable failure indicator and it defines the vibration signatures of intact, central cracked and rail seat cracked sleepers.

Keywords

References

  1. Bhuyan, D., Mishra, P.C. and Panigrahi, R. (2012), "Response of prestressed concrete sleepers subjected to static loading", Int. J. Adv. Technol. Civil Eng., 1(2), 000-000.
  2. Carne, T., Todd, D. and Casias, M. (2007), "Support conditions for free boundary-condition modal testing", Presented at IMAC XXV, the 25th International Modal Analysis Conference, Orlando, FL, February 19-22.
  3. Ewins, D.J. (2000), Modal Testing: Theory and Practice, Research Studies Press, UK.
  4. Ford, R. (1988), "Modal analysis of a concrete railway sleeper", Research Note AVG/RN881122-1, School of Mechanical and Industrial Engineering, UNSW, Australia.
  5. Gonzalez-Nicieza, C., Alvarez-Fernandez, M.I., Menendez-Diaz, A., Alvarez-Vigil, A.E. and Ariznavarreta-Fernandez, F. (2008), "Failure analysis of concrete sleepers in heavy haul railway tracks", Eng. Fail. Anal., 15, 90-117. https://doi.org/10.1016/j.engfailanal.2006.11.021
  6. Kaewunruen, S. and Remennikov, A.M. (2007), "Field trials for dynamic characteristics of railway track and its components using impact excitation technique", NDT & E Int., 40, 510-519. https://doi.org/10.1016/j.ndteint.2007.03.004
  7. Kaewunruen, S. and Remennikov, A.M. (2008), "Dynamic effect on vibration signatures of cracks in railway prestessed concrete sleepers", Adv. Mater. Res., 41(42), 233-239.
  8. Kaewunruen, S. and Remennikov, A.M. (2009), "Trends in vibration-based structural health monitoring of railway sleepers", Expert Comentary, in Ed. Sapri, R.C., Mechanical Vibration; Measurement, Effect and Control, 3-4.
  9. Kaewunruen, S. and Remennikov, A.M. (2009), "Progressive failure of prestressed concrete sleepers under multiple high-intensity impact loads", Eng. Struct., 31, 2460-2473. https://doi.org/10.1016/j.engstruct.2009.06.002
  10. Kaewunruen, S. and Remennikov, A.M. (2009), "Impact fatigue responses of pre-stressed concrete sleepers in railway track systems", IES J. Part A: Civil Struct. Eng., 2(1), 47-58. https://doi.org/10.1080/19373260802479377
  11. Kaewunruen, S. and Remennikov, A.M. (2010), "Dynamic crack propagation in prestessed concrete sleepers in railway track systems subjected to severe impact loads", J. Struct. Eng., 136, 749-754. https://doi.org/10.1061/(ASCE)ST.1943-541X.0000152
  12. Kaewunruen, S. and Remennikov, A.M. (2011), "Experiments into impact behavior of railway prestressed concrete sleepers", Eng. Fail. Anal., 18, 2305-2315. https://doi.org/10.1016/j.engfailanal.2011.08.007
  13. Kennedy, C.C. and Pancu, C.D.P. (1947), "Use of vectors in vibration measurement and analysis", J. Aero. Sci., 14(11), 603. https://doi.org/10.2514/8.1474
  14. Maia, N. and Silva, J. (1997), Theoretical and Experimental Modal Analysis, Research Press Ltd.
  15. Remennikov, A. and Kaewunruen, S. (2006), "Experimental investigation on dynamic railway sleeper/ballast interaction", Exp. Mech., 46, 57-66. https://doi.org/10.1007/s11340-006-5868-z
  16. Sadeghi, J. (2010), "Field investigation on dynamics of railway track pre-stressed concrete sleepers", Adv. Struct. Eng., 13(1), 139-152. https://doi.org/10.1260/1369-4332.13.1.139
  17. Salau, O.S. (1997), "Detection of structural damage through changes in frequency: a review", Eng. Struct., 19(9), 718-723. https://doi.org/10.1016/S0141-0296(96)00149-6
  18. Salter, J.P. (1969), Steady State Vibration, Kenneth Mason Press.
  19. UNE-EN 13230-2 (2010), Aplicaciones Ferroviarias. Via. Traviesas de hormigon, Parte 2: Traviesas monobloque pretensadas, AENOR.
  20. Zakeri, J. and Sadeghi, J. (2007), "Field investigation on load distribution and deflections of railway track sleepers", J. Mech. Sci. Technol., 21(12), 1948-1956. https://doi.org/10.1007/BF03177452

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