Effect of Melting Pool on the Residual Stress of Welded Structures in Finite Element Analysis

  • Lee, Jang-Hyun (Department of Naval Architecture and Ocean Engineering, Inha University) ;
  • Hwang, Se-Yun (Department of Naval Architecture and Ocean Engineering, Inha University Graduate School) ;
  • Yang, Yong-Sik (Department of Naval Architecture and Ocean Engineering, Inha University)
  • Published : 2007.09.30

Abstract

Welding processes cause undesirable problems, such as residual stresses and deformations due to the thermal loads imposed by local heating, melting, and cooling processes. This paper presents a computational modeling technique to simulate the Gas Metal Arc Welding (GMAW) process, emphasizing the effect of the melting bead on the residual stress distribution. Both a three-bar analogy and a three-dimensional thermo-mechanical finite element analysis are carried out in order to explain the effect. Element (de)activation, enthalpy, and adjustment of the reference temperature of thermal strain are considered with respect to the effect of the weld filler metal added to the base metal during a thermo-elastic-plastic analysis. Stress distributions obtained by the present study are compared with measured values and available data from other studies. The effect of the melting bead on the residual stress distribution is discussed and demonstrated.

Keywords

References

  1. ANSYS. 2005. Advanced Analysis Techniques Guide. ANSYS, Inc
  2. Cheng, W. 2005. In-plane Shrinkage Strains and Their Effects on Welding Distortion in Thin-wall Structures, Ph.D. Thesis, Ohio State University
  3. Lee, D.W. 1995. Thermo-Elasto-Plastic Modeling of GMAW Using the Finite Element Method, Ph.D, Thesis, Seoul National University
  4. Lee, J.H. 1999. Relation between Input Parameters and Residual Deformations in Line Heating Process Using Finite Element Method and Multi-Variate Analysis. Ph.D. Thesis, Seoul National University
  5. Kim, J.H. 2000. Simulation ofGMAW using 3-Dimensional Thermo-elasto-plastic Analysis. M.Sc. Thesis, Seoul National University
  6. Masubuchi, K. 1980. Analysis of Welded Structures. Pergamon Press, Oxford, New York
  7. Patel, E.G. 1985. Thermo-elasto-plastic Finite Element Formulation for Deformation and Residual Stresses Due to Welds. Ph.D. Thesis, Carleton University
  8. Sorenson, M.B. 1999. Simulation of Welding Distortions in Ship Section. Ph.D. Thesis, Technical University of Denmark
  9. Tekriwal, P.K. 1989. Three-dimensional Transient Thermo-elasto-plastic Modeling of Gas Metal Arc Welding using The Finite Element Method. Ph.D. Thesis, University of Illinois at Urbana-Champaign
  10. Zhu, X.K. and Y.J. Chao. 2002. Effects of Temperature-dependent Material Properties On Welding Simulation. Computers & Structures, 80, 11, 967-976 https://doi.org/10.1016/S0045-7949(02)00040-8