Effect of rotation speed on texture type in friction stir welding joint for 6082-T6 aluminum alloy

被引:0
|
作者
Zhang L. [1 ]
Wang X. [1 ,2 ]
Wei X. [1 ]
Liu X. [1 ]
Chai T. [3 ]
机构
[1] State Key Laboratory of Advanced Processing and Recycling of Non-ferrous Metals, Lanzhou University of Technology, Lanzhou
[2] School of Materials Science and Engineering, Lanzhou University of Technology, Lanzhou
[3] School of Bailie Mechanical Engineering, Lanzhou City University, Lanzhou
关键词
6082-T6 aluminum alloy; EBSD; Friction stir welding; Grain orientation evolution;
D O I
10.12073/j.hjxb.2019400085
中图分类号
学科分类号
摘要
The evolutions of grain morphology, grain boundary features and texture components on the upper surface of friction stir welding nugget for 6082-T6 aluminum alloy at different rotation speeds of tool were studied by electron backscatter diffraction technology combined with orientation analysis software. The results indicated that the (110) [001] Goss texture and (114)[ 221] texture were formed in the nugget zone under the shear stress introduced by the pin, and the upsetting pressure of the shoulder made it rotate to certain angle along the transverse direction, leading to the formation of (112)[111] copper texture. With elevating the rotation speed of tool, the rotation angle of grains along the transverse direction increased, resulting in the further formation of (100) [011] shear texture and (111)[112] texture. [110] fiber texture was formed by extrusion of grain in nugget zone by pin. When the rotation speed of tool was elevated from 1 200 to 2 000 r/min, the extrusion degree was increased, which resulted in a significant increase in the components of [110] fiber texture. © 2019, Editorial Board of Transactions of the China Welding Institution, Magazine Agency Welding. All right reserved.
引用
收藏
页码:128 / 132
页数:4
相关论文
共 13 条
  • [1] Threadgill P.L., Terminology in friction stir welding, Science & Technology of Welding & Joining, 12, 4, pp. 357-360, (2007)
  • [2] Su J.Q., Nelson T.W., Mishra R., Et al., Microstructural investigation of friction stir welded 7050-T651 aluminium, Acta Materialia, 51, 3, pp. 713-729, (2003)
  • [3] Topic I., Hoppel H.W., Goken M., Friction stir welding of accumulative roll-bonded commercial-purity aluminium AA1050 and aluminium alloy AA6016, Materials Science & Engineering A, 503, 1, pp. 163-166, (2009)
  • [4] Dong X., Li X., Zou D., Et al., Numerical simulation welding of temperature field in the process for 7022 aluminum full friction stir alloy, Materials for Mechanical Engineering, 36, 10, pp. 92-96, (2012)
  • [5] Wang X., Han X., Li C., Et al., Horizontal flow status ofplasticmetal in differentdepth during friction stir welding for thick alum inum alloy, Transactions of Nonferrous Metals Society of China, 15, 2, pp. 198-204, (2005)
  • [6] Xu W.F., Liu J.H., Chen D.L., Material flow and core/multi-shell structures in a friction stir welded aluminum alloy with embedded copper markers, Journal of Alloys & Compounds, 509, 33, pp. 8449-8454, (2011)
  • [7] Suhuddin U.F.H.R., Mironov S., Sato Y.S., Et al., Grain structure and texture evolution during friction stir welding of thin 6016 aluminum alloy sheets, Materials Science & Engineering A, 527, 7-8, pp. 1962-1969, (2010)
  • [8] Yuan G., Liang C., Liu H., Et al., Crystal orientation in nugget zone of friction stir welded 5083 aluminum alloy plates, Tansactions of the China Welding Instiution, 35, 8, pp. 79-82, (2014)
  • [9] Zhang H., Zhang Z., Chen J., Effect of angular velocity of the pin on materal folw during friction stir welding, Acta Metallurgica Sinica, 41, 8, pp. 853-859, (2005)
  • [10] Wang X., Han X., Guo R., Et al., Numberical simulation of temperature field in friction stir welding, Tansactions of the China Welding Instiution, 26, 12, pp. 17-20, (2005)