Abstract
A commercial 2024 aluminum alloy was heat treated at 280 °C for 48 h and then slow cooled in a furnace to obtain minimum hardness. This material was then friction stir processed (FSP) using three sets of processing conditions. To study the effect of the processing on the microstructure and the high temperature mechanical properties, the materials were tested in tension at an initial strain rate of 10−2 s−1 and temperature range 200 to 450 °C. Processing severity was selected as the main factor for obtaining fine grain sizes right after FSP. The grain size was enormously reduced from about 50 µm to 1 µm. This grain reduction gave rise to very high elongations to failure of about 400%. Strain–rate-change tests showed a stress exponent close to 2 at intermediate strain rates, which was related to grain boundary sliding as the controlling deformation mechanism and to superplasticity, which is strongly grain-size dependent. A possible controlling deformation mechanism by solute-drag creep, as proposed by other authors, was disregarded since tests conducted at 450 °C, where the microstructure of the FSP materials coarsens rapidly, gave a low elongation to failure and high resistance, which showed the importance of the grain size dependence of the operative deformation mechanism at 250–400 °C, which was only compatible with grain boundary sliding.
Funder
Ministry of Economy, Industry and Competitiveness
Ministerio de Ciencia e Innovación MCIN
Subject
General Materials Science,Metals and Alloys
Reference41 articles.
1. The effect of precipitation-hardening conditions on wear behaviours at 2024 aluminium wrought alloy;J. Mater. Process. Technol.,2003
2. Grain refinement, thermal stability and tensile properties of 2024 aluminum alloy after equal-channel angular pressing;J. Mater. Process. Technol.,2005
3. High strain rate superplasticity in a friction stir processed 7075 Al alloy;Scr. Mater.,2000
4. Friction Stir Processing: A New Grain Refinement Technique to Achieve High Strain Rate Superplasticity in Commercial Alloys;Mater. Sci. Forum,2001
5. Structure of Cu deformed by high pressure torsion;Acta Mater.,2005
Cited by
2 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献