Published March 2018 | Version v1
Journal article

Microstructure of Friction Stir Welded AlSi9Mg Cast with 5083 and 2017A Wrought Aluminum Alloys

  • 1. Miami University, Department of Mechanical and Manufacturing Engineering, College of Engineering and Computing (United States)
  • 2. AGH University of Science and Technology, Faculty of Metal Engineering and Industrial Computer Science (Poland)
  • 3. Polish Welding Centre of Excellence (Poland)

Description

Wrought aluminum alloys 5083 and 2017A were each joined with cast aluminum alloy AlSi9Mg through friction stir welding in butt weld configurations. For each material system, the wrought and cast alloy positions, i.e., the advancing side or the retreating side, were exchanged between welding trials. The produced weldments were free from cracks and discontinuities. For each alloy configuration, a well-defined nugget comprised of alternating bands of the welded alloys characterized the microstructure. The degree of mixing, however, strongly depended on which wrought alloy was present and on its position during processing. In all cases, the cast AlSi9Mg alloy dominated the weld center regardless of its position during welding. Electron backscattered diffraction analysis showed that the grain size in both alloys (bands) constituting the nugget was similar and that the majority of grain boundaries exhibited a high angle character (20°-60°). Regardless of the alloy, however, all grains were elongated along the direction of the material plastic flow during welding. A numerical simulation of the joining process visualized the material flow patterns and temperature distribution and helped to rationalize the microstructural observations. The hardness profiles across the weld reflected the microstructure formed during welding and correlated well with the temperature changes predicted by the numerical model. Tensile specimens consistently fractured in the cast alloy near the weld nugget.

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Materials Engineering and Performance
Journal Volume
27
Journal Issue
3
Journal Page Range
p. 1185-1193
ISSN
1059-9495
CODEN
JMEPEG

Optional Information

Copyright
Copyright (c) 2018 ASM International
Notes
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