Deformation characteristics and microstructural evolution in friction stir welding of thick 5083 aluminum alloy

被引:1
作者
Murshid Imam
Yufeng Sun
Hidetoshi Fujii
Ninshu MA
Seiichiro Tsutsumi
Shuja Ahmed
Viswanath Chintapenta
Hidekazu Murakawa
机构
[1] Osaka University,Joining and Welding Research Institute
[2] Indian Institute of Technology Patna,Department of Mechanical Engineering
[3] Zhengzhou University,School of Materials Science and Engineering
[4] Indian Institute of Technology Hyderabad,Department of Mechanical and Aerospace Engineering
来源
The International Journal of Advanced Manufacturing Technology | 2018年 / 99卷
关键词
Friction stir welding; Particle-stimulated nucleation; Stop-action weld; Deformation state; Weld key-hole;
D O I
暂无
中图分类号
学科分类号
摘要
The microstructure development in the weld key-hole along the plate thickness was investigated through scanning electron microscope (SEM), electron backscatter diffraction (EBSD), and transmission electron microscopy (TEM) techniques. A fundamental understanding of the contact condition at the tool/workpiece interface in a TriflatTM designed friction stir welding (FSW) tool is presented. The development of grain structure for “stop-action” weld reveals that the plasticized material undergoes complex interacting flows due to the presence of threads and flats. The localized high material velocities induce a significant increase in the strain rate within thread space and thereby tune the Zener-Hollomon parameter. An interesting analogy is drawn between the evolution of the secondary shear zone (SSZ) in a typical metal cutting and the steady state FSW processes. The presence of different morphology of the material filling the thread space is linked to the local variation of the contact state variables along weld thickness. It was found that the contact state is governed by the intrinsic interface characteristics and the mechanical property of the material. It was also shown that the presence of larger particles (> 0.5 μm) is responsible for the formation of high angle boundaries (HAGBs) and random recrystallization texture within the stir zone, reflecting random grain orientation due to particle-stimulated nucleation (PSN).
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页码:663 / 681
页数:18
相关论文
共 142 条
[1]  
Imam M(2017)Friction stir welding of thick aluminium welds - challenges and perspectives Friction Stir Welding and Processing IX 119-124
[2]  
Sun Y(2005)Friction stir welding and processing Mater Sci Eng R 50 1-78
[3]  
Fujii H(2008)Recent advances in friction-stir welding-process, weldment structure and properties Prog Mater Sci 53 980-1023
[4]  
Aoki Y(2011)Friction stir welding tools Sci Tech Weld Join 16 325-342
[5]  
Ninshu MA(2012)Review of tools for friction stir welding and processing Can Metall Q 51 250-261
[6]  
Tsutsumi S(2013)On use of weld zone temperatures for online monitoring of weld quality in friction stir welding of naturally aged aluminium alloys Mater Des 52 730-739
[7]  
Murakawa H(2003)Tensile properties and fracture locations of friction-stir-welded joints of 2017-T351 aluminum alloy J Mater Proc Tech 142 692-696
[8]  
Mishra RS(2007)Material behaviors and mechanical features in friction stir welding process Int J Adv Manuf Technol 35 86-100
[9]  
Ma ZY(2016)Prediction of fatigue life of welding tool in friction stir welding of AA6061-t6 Int J Adv Manuf Technol 86 3407-3415
[10]  
Nandan R(2017)Microstructure-property relation and evolution in friction stir welding of naturally aged 6063 aluminium alloy Int J Adv Manuf Technol 91 1753-1769