Investigate the Properties of FSW Aluminum Alloy by Varying the Tool Geometry: A Literature Review

Authors

  • Abhishek R. Solanki   Student, Mechanical Engineering Department, Sigma Institute of Engineering, (India)
  • Brijesh A. Gandhi   Student, Mechanical Engineering Department, Sigma Institute of Engineering, (India)
  • Amol A. Patil   Student, Mechanical Engineering Department, Sigma Institute of Engineering, (India)
  • Keyur J. Patel   Student, Mechanical Engineering Department, Sigma Institute of Engineering, (India)
  • Mr. Saumil Joshi  Assistant Professor, Mechanical Engineering Department, Sigma Institute of Engineering, (India)

Keywords:

Friction stir welding, Aluminum alloy, Pin geometry, Shoulder geometry, Welding Parameters

Abstract

FSW (Friction stir welding) is a newest green welding process. It’s a solid-state joining process that uses a non-consumable rotating tool to join the two same or different metal. During the process, heat is generated by friction between the rotating tool and the work piece material, which leads joining two facing of work pieces before the melting point of the metal reached. Quality of the weld zone depends on tool geometry and welding parameters. This review presents the effect of different pin and shoulder geometry on aluminum alloy.

References

  1. Mishra, Rajiv S., and Z. Y. Ma. "Friction stir welding and processing." Materials Science and Engineering: R: Reports 50.1-2 (2005): 1-78.
  2. Kumar, P. Satish, Ch SR Shastry, and Aruri Devaraju. "Influence of Tool Revolving on Mechanical Properties of Friction Stir Welded 5083Aluminum alloy." Materials Today: Proceedings 4.2 (2017): 330-335.
  3. Piccini, Joaquín M., and Hernán G. Svoboda. "Tool geometry optimization in friction stir spot welding of Al-steel joints." Journal of Manufacturing Processes 26 (2017): 142-154.
  4. Ashish, B. I. S. T., J. S. Saini, and Bikramjit Sharma. "A review of tool wear prediction during friction stir welding of aluminum matrix composite." Transactions of Nonferrous Metals Society of China 26.8 (2016): 2003-2018.
  5. Gao, Y., et al. "Optimizing tool diameter for friction stir welded brass/steel lap joint." Journal of Materials Processing Technology 229 (2016): 313-321.
  6. Giraud, Landry, et al. "Investigation into the dissimilar friction stir welding of AA7020-T651 and AA6060-T6." Journal of Materials Processing Technology 235 (2016): 220-230.
  7. Dawood, H. I., et al. "Effect of small tool pin profiles on microstructures and mechanical properties of 6061 aluminum alloy by friction stir welding." Transactions of Nonferrous Metals Society of China 25.9 (2015): 2856-2865.
  8. Doude, H., et al. "Optimizing weld quality of a friction stir welded aluminum alloy." Journal of Materials Processing Technology 222 (2015): 188-196.
  9. Hasan, A. F., C. J. Bennett, and P. H. Shipway. "A numerical comparison of the flow behaviour in Friction Stir Welding (FSW) using unworn and worn tool geometries." Materials & Design 87 (2015): 1037-1046.
  10.  Ramachandran, K. K., N. Murugan, and S. Shashi Kumar. "Effect of tool axis offset and geometry of tool pin profile on the characteristics of friction stir welded dissimilar joints of aluminum alloy AA5052 and HSLA steel." Materials Science and Engineering: A 639 (2015): 219-233.
  11.  Jesus, J. S., et al. "Effect of geometrical parameters on Friction Stir Welding of AA 5083-H111 T-joints." Procedia Structural Integrity 1 (2016): 242-248.

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Published

2018-04-10

Issue

Section

Research Articles

How to Cite

[1]
Abhishek R. Solanki , Brijesh A. Gandhi , Amol A. Patil , Keyur J. Patel , Mr. Saumil Joshi, " Investigate the Properties of FSW Aluminum Alloy by Varying the Tool Geometry: A Literature Review, International Journal of Scientific Research in Science, Engineering and Technology(IJSRSET), Print ISSN : 2395-1990, Online ISSN : 2394-4099, Volume 4, Issue 5, pp.634-639, March-April-2018.