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Part A: Materials Science

The effect of size on dislocation cell formation and strain hardening in aluminium

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Pages 2062-2071 | Received 10 Dec 2013, Accepted 14 Mar 2014, Published online: 29 Apr 2014
 

Abstract

The formation of dislocation cells has a significant impact on the strain hardening behaviour of metals. Dislocation cells can form in metals with a characteristic size defined by three-dimensional tangles of dislocations that serve as “walls” and less dense internal regions. It has been proposed that inhibiting the formation of dislocation cells could improve the strain hardening behaviour of metals such as Al. Here we employ in situ scanning electron microscope compression testing of pure Al single crystal pillars with physical dimensions larger, close to and smaller than the reported cell size in Al, respectively, to investigate the possible size effect on the formation of dislocation cell and the consequent change of mechanical properties. We observed that the formation of dislocation cells is inhibited as the pillar size decreases to a critical value and simultaneously both the strength and the strain hardening behaviour become strongly enhanced. This phenomenon is discussed in terms of the effect of dimensional restriction on the formation of dislocation cells. The reported mechanism could be applied in polycrystalline Al where the tunable physical dimension could be grain size instead of sample size, providing insight into Al alloy design.

Funding

This research was supported by the General Motors Research and Development Center and the National Center for Electron Microscopy at Lawrence Berkeley National Laboratory, which is supported by the US Department of Energy under Contract # DE-AC02-05CH11231.

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