DOI QR코드

DOI QR Code

Residual Stress Analysis of Repair Welded Rail Using the ABAQUS User Subroutine

ABAQUS 서브루틴을 이용한 레일 보수용접 잔류응력 해석

  • Kim, Dong Wook (Department of Railway System Engineering, University of Science and Technology) ;
  • Jun, Hyun Kyu (Fatigue and Fracture Research Team, Korea Railroad Research Institute) ;
  • Lee, Sang Hwan (Department of Nuclear Engineering, Kyung Hee University) ;
  • Chang, Yoon Suk (Department of Nuclear Engineering, Kyung Hee University)
  • 김동욱 (과학기술연합대학원대학교 철도시스템공학과) ;
  • 전현규 (한국철도기술연구원 피로손상연구팀) ;
  • 이상환 (경희대학교 원자력공학과) ;
  • 장윤석 (경희대학교 원자력공학과)
  • Received : 2016.04.28
  • Accepted : 2016.06.20
  • Published : 2016.07.01

Abstract

Reduction of welding residual stress is very important in the railway industry, but calculating its distribution in structures is difficult because welding residual stress formation is influenced by various parameters. In this study, we developed a finite element model for simulating the repair welding process to recover a surface damaged rail, and conducted a series of parametric studies while varying the cooling rate and the duration of post weld heat treatment (PWHT) to find the best conditions for reducing welding residual stress level. This paper presents a three-dimensional model of the repair welding process considering the phase transformation effect implemented by the ABAQUS user subroutine, and the results of parametric studies with various cooling rates and PWHT durations. We found that heat treatment significantly reduced the residual stress on the upper rail by about 170 MPa.

Keywords

References

  1. Skyttebol, A., Josefson, B. L., and Ringsberg, J. W., "Fatigue Crack Growth in a Welded Rail under the Influence of Residual Stresses," Engineering Fracture Mechanics, Vol. 72, No. 2, pp. 271-285, 2005. https://doi.org/10.1016/j.engfracmech.2004.04.009
  2. Venkata, K. A., Kumar, S., Dey, H., Smith, D., Bouchard, P., et al., "Study on the Effect of Post Weld Heat Treatment Parameters on the Relaxation of Welding Residual Stresses in Electron Beam Welded P91 Steel Plates," Procedia Engineering, Vol. 86, pp. 223-233, 2014. https://doi.org/10.1016/j.proeng.2014.11.032
  3. Taniguchi, G. and Yamashita, K., "Effects of Post Weld Heat Treatment (PWHT) Temperature on Mechanical Properties of Weld Metals for High-Cr Ferritic Heat-Resistant Steel," Kobelco Technology Review, Vol. 32, pp. 33-39, 2013.
  4. Krasovskyy, A., Sonnichsen, S., and Bachmann, D., "On the Residual Stresses in Multi-Pass Welds: Coupling of Welding Simulation and Fatigue Analysis," Procedia Engineering, Vol. 10, pp. 506-511, 2011. https://doi.org/10.1016/j.proeng.2011.04.085
  5. Qian, Y. W. and Zhao, J. P., "Influence of PWHT on the Residual Stress in under-Matching Welded Joint," Procedia Engineering, Vol. 130, pp. 966-972, 2015. https://doi.org/10.1016/j.proeng.2015.12.249
  6. Piekarska, W., Kubiak, M., and Saternus, Z., "Numerical Modelling of Thermal and Structural Strain in Laser Welding Process," Archives of Metallurgy and Materials, Vol. 57, No. 4, pp. 1219-1227, 2012. https://doi.org/10.2478/v10172-012-0136-y
  7. Bae, H.-Y., Kim, J.-H., Kim, Y.-J., Oh, C.-Y., Kim, J.-S., et al., "Sensitivity Analysis of Finite Element Parameters for Estimating Residual Stress of JGroove Weld in RPV CRDM Penetration Nozzle," The Korean Society of Mechanical Engineers A, Vol. 36, No. 10, pp. 1115-1130, 2012. https://doi.org/10.3795/KSME-A.2012.36.10.1115
  8. Lee, S.-H., Kim, S. H., Chang, Y.-S., and Jun, H. K., "Fatigue Life Assessment of Railway Rail Subjected to Welding Residual and Contact Stresses," Journal of Mechanical Science and Technology, Vol. 28, No. 11, pp. 4483-4491, 2014. https://doi.org/10.1007/s12206-014-1016-3
  9. Jun, H.-K., Seo, J.-W., Jeon, I.-S., Lee, S.-H., and Chang, Y.-S., "Fracture and Fatigue Crack Growth Analyses on a Weld-Repaired Railway Rail," Engineering Failure Analysis, Vol. 59, pp. 478-492, 2016. https://doi.org/10.1016/j.engfailanal.2015.11.014
  10. Deng, D. and Murakawa, H., "Numerical Simulation of Temperature Field and Residual Stress in Multi-Pass Welds in Stainless Steel Pipe and Comparison with Experimental Measurements," Computational Materials Science, Vol. 37, No. 3, pp. 269-277, 2006. https://doi.org/10.1016/j.commatsci.2005.07.007
  11. Ringsberg, J. W. and Lindback, T., "Rolling Contact Fatigue Analysis of Rails Including Numerical Simulations of the Rail Manufacturing Process and Repeated Wheel Rail Contact Loads," International Journal of Fatigue, Vol. 25, No. 6, pp. 547-558, 2003. https://doi.org/10.1016/S0142-1123(02)00147-0
  12. Cai, Z., Nawafune, M., Ma, N., Qu, Y., Cao, B., et al., "Residual Stresses in Flash Butt Welded Rail," Transactions of JWRI, Vol. 40, No. 1, pp. 79-87, 2011.
  13. Chen, Y. C., Chen, L. W., Lee, S. Y., and Kuang, J. H., "A Wheel and a Corrugated Rail Thermal Contact Simulation During Braking Sliding," Proc. of 12th International Federation for the Promotion of Mechanism and Machine Science World Congress, pp. 18-21, 2007.
  14. Popov, V., Psakhie, S., Shilko, E., Dmitriev, A., Knothe, K., et al., "Friction Coefficient in Rail Wheel Contacts as a Function of Material and Loading Parameters," Physical Mesomechanics, Vol. 5, No. 3, pp. 17-24, 2002.
  15. Yan, Z., Zhao, R., Duan, F., Teck, N. W., Toh, K. C., et al., "Spray Cooling," Two Phase Flow, Phase Change and Numerical Modeling, pp. 285-310, 2011.
  16. Korean Standards Association, "Methods of Post Weld Heat Treatment," Korea Agency for Technology and Standards, KS B 0954, 2007.