论文

用可变长度热源模拟奥氏体不锈钢多层焊对接接头的焊接残余应力

  • 邓德安 ,
  • 清岛洋一
展开
  • 1.重庆大学材料科学与工程学院; 重庆 400045
    2.计算力学研究中心技术开发部; 东京 142--0041; 日本
邓德安, 男, 1968年生, 教授, 博士

收稿日期: 2009-07-30

  修回日期: 2009-12-09

  网络出版日期: 2010-02-10

NUMERICAL SIMULATION OF WELDING RESIDUAL STRESSES IN A MULTI–PASS BUTT–WELDED JOINT OF AUSTENITIC STAINLESS STEEL USING VARIABLE LENGTH HEAT SOURCE

  • DENG De-An ,
  • QING Dao-XiangYi
Expand
  • 1.College of Materials Science & Engineering; Chongqing University; Chongqing 400045
    2.Department of Technical Development; Research Center of Computational Mechanics; Inc.; Tokyo 142–0041; Japan

Received date: 2009-07-30

  Revised date: 2009-12-09

  Online published: 2010-02-10

摘要

采用可变长度热源模型对奥氏体不锈钢平板多层焊对接接头的残余应力进行了数值模拟, 同时也用实验方法测量了平板对接接 头上下表面的残余应力. 通过比较由热弹塑性有限元计算得到的残余应力与由电阻应变片法测量得到的实验结果得知, 采用该模型对多层焊对接接头残余应力的数值模拟, 不仅可以大大缩短计算时间, 也可以得到较高的计算精度.

本文引用格式

邓德安 , 清岛洋一 . 用可变长度热源模拟奥氏体不锈钢多层焊对接接头的焊接残余应力[J]. 金属学报, 2010 , 46(2) : 195 -200 . DOI: 10.3724/SP.J.1037.2009.00521

Abstract

Recent discoveries of stress corrosion cracking at welded joints in pressurized water reactors and boiling water reactors have raised wide concerns about the safety and integrity of plant components. It has been recognized that residual stress and applied stress on their surfaces largely increase the expanding risk of initial stress corrosion cracking. Therefore, it is very important to investigate the welding residual stress in welded joints. It is very expensive and time–consuming to measure the residual stress, and sometime is impossible. As an alternative approach a computational procedure on the basis of finite element method is effective in solving non–linear problems such as thermal and mechanical nonlinearity in a welding process. Accurately simulating welding residual stress not only needs generally a long computational time, but also strongly depends on the analyst’s experience and know–how which is a main hindrane for the welding process simulation. Therefore, it is an urgent task to develop a time–effective numerical simulation procedure to calculate welding temperature field and residual stress distribution. In this study, a new method on the basis of the vaiable length heat souce was developed to simulate the welding residual stress in a multi–pass butt–welded joint of austenitic stainless steel. Meanwhile, the experiment was carried out to obtain the welding residual stress in the utt–welded joint. Comparing the simulated with experimental results, it was found that this method could not only save a large amount of computational time but also provide a highly accurate numerical result for the residual stress in multi–pass butt–welded joints.

参考文献

[1] Deng D, Murakawa H, Liang W. Comput Mater Sci, 2008; 42: 234
[2] Ogawa K, Deng D, Kiyoshima S, Yanagida N, Saito K. Comput Mater Sci, 2009; 45: 1031
[3] Hamada I, Yamauchi K. Nucl Eng Des, 2002; 214: 205
[4] KoshiishiM, Fujimori H, Okada M, Hirano A. Hitachi Rev, 2009; 58: 88
[5] Ueda Y, Yamakawa T. JWRI Trans, 1971; 2: 90
[6] Deng D, Murakawa H. Comput Mater Sci, 2008; 43: 681
[7] Deng D. Mater Des, 2009; 30: 359
[8] Deng D. PhD Thesis, Osaka University, 2002
[9] Hong J K, Tsai C L, Dong P. Weld J, 1998; 77: 372s
[10] Nishigawa H, Serizawa H, Murakawa H. Sci Technol Weld Join, 2007; 12: 147
[11] Ogawa K, Yanagida N, Saito K. Proc PVP2008, 2008 ASME Pressure Vessels and Piping Division Conference, July 27–31, 2008, Chicago, Illinois, USA, PVP2008–61321, CD–ROM
[12] Kiyoshima S, Deng D, Ogawa K, Yanagida N, Satio K. Comput Mater Sci, 2009; 46: 987
[13] Kiyoshima S. Quick Welder User’s Manual. Research Center of Computational Mechanics Inc., Tokyo, 2005: 23
(清岛祥一. Quick Welderユ一ザマニュアル. 计算力学研究センタ一, 东京, 2005: 23)
[14] Deng D, Murakawa H. Comput Mater Sci, 2006; 37: 269
[15] Terasaki T, Kitamura T, Akiyama T, Nakatani M. Sci Tech Weld Join, 2005; 10: 701
[16] Deng D, Murakwa H. Comput Mater Sci, 2006; 37: 209
[17] Leggatt R H. Int J Press Vessels Piping, 2008; 85: 144

文章导航

/