3D Thermal finite element analysis of single pass girth welded low carbon steel pipe-flange joints

被引:11
作者
Abid, Muhammad [1 ]
Qarni, Muhammad Jawad [1 ]
机构
[1] Faculty of Mechanical Engineering, Ghulam Ishaq Khan Institute of Engineering Sciences and Technology, Topi
来源
Turkish Journal of Engineering and Environmental Sciences | 2009年 / 33卷 / 04期
关键词
Finite element analysis (FEA); Girth GMAW process; Pipe-flange joints; Thermal history; Transient temperature distribution;
D O I
10.3906/muh-0912-6
中图分类号
学科分类号
摘要
This paper presents a detailed computational procedure for predicting the complete thermal history including transient temperature distribution during girth welding and subsequent post weld cooling of low carbon steel pipe flange joints. Using the FE code ABAQUS, 3-dimensional non-linear heat transfer analysis is carried out to simulate gas metal arc welding (GMAW) process. ANSI Class #300 flange is used with a 6 mm thick, 200 mm long and 100 mm nominal diameter pipe. Joint type is a single 'V-groove' butt joint with a 1.2 mm root opening. FORTRAN subroutine is utilized for the application of volumetric heat flux from the weld torch using Goldak's double ellipsoidal heat source model, which is based on Gaussian power density distribution. Temperature dependent thermal properties as well as phase change effects have also been accounted. Apart from comprehensive discussion on the thermal history, in-depth analysis of the axial temperature profile at four different sections on both sides of the weld joint is presented. The simulated results showed that the temperature distribution around the implemented heat source model is steady when the weld torch moves around the circumferential joint. The present simulation model can be used as a proper tool to investigate the effect of different GMAW process parameters. ©TÜBİTAK.
引用
收藏
页码:281 / 293
页数:12
相关论文
共 15 条
[1]  
Analysis User's Manual, (2008)
[2]  
Abid M., Siddique M., Mufti R.A., Prediction of Welding Distortions and Residual Stress in Pipe-Flange Joint Using Finite Element Technique, Model. Simul. Mater. Sci. Eng, 13, pp. 455-470, (2005)
[3]  
Andersson B.A.B., Thermal Stresses in a Submerged-Arc Welded Joint Considering Phase Transformations, J Eng. & Tech. Trans. ASME, 100, pp. 356-362, (1978)
[4]  
Goldak J., Chakravarti A., Bibby M., A New Finite Element Model for Heat Sources, Metall. Trans. B, 15 B, pp. 299-305, (1984)
[5]  
Goldak J., Bibby M., Moore J., House R., Patel B., Computer Modeling of Heat Flow in Welds, Metallurgical Transactions B, 17, pp. 587-600, (1986)
[6]  
Goldak J., Akhlaghi M., Computational Welding Mechanics, (2005)
[7]  
Karlsson R.I., Josefson B.L., Three Dimensional Finite Element Analysis of Temperature and Stresses in Single-Pass Butt-Welded Pipe, ASME J. PVT, 112, pp. 76-84, (1990)
[8]  
Lindgren L.E., Finite Element Modeling and Simulation. Part 2: Improved Material Modeling, Journal of Thermal Stresses, 24, pp. 195-231, (2001)
[9]  
Maddox S.J., Influence of Tensile Residual Stresses on the Fatigue Behavior of Welded Joints in Steel, American Society For Testing and Materials, STP, 776, pp. 63-96, (1982)
[10]  
Paley Z., Hibbert P.D., Computation of Temperatures in Actual Weld Designs, Welding Journal Research Supplement, 54, (1975)