4.7 Article

Microstructure and mechanical properties of ultrafine grained 5052 Al alloy fabricated by multi-pass differential speed rolling

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ELSEVIER
DOI: 10.1016/j.jmrt.2022.05.196

关键词

Al alloys; Differential speed rolling; Microstructure; Texture; Mechanical properties

资金

  1. POSCO Science Fellowship of POSCO TJ Park Foundation

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This study investigated the microstructural evolution and mechanical properties of an ultrafine-grained aluminum alloy processed by multi-pass differential speed rolling. The deformed microstructure gradually evolved from band-like structure to equiaxed ultrafine grains with high angle grain boundaries. Tensile test results showed increased strength with decreasing grain size but sacrificed ductility, while the contribution of strengthening mechanisms was discussed.
This study examined the microstructural evolution and mechanical properties of an ultrafine grained (UFG) Al alloy processed by multi-pass differential speed rolling (DSR). For DSR operations with a thickness reduction of 30% in each pass and a roll speed ratio of 1:4 for the lower and upper rolls, respectively, plastic strain was imparted to the samples that were rotated 180 degrees along the longitudinal axis between the adjacent passes. As the number of operations increased, the deformed microstructure developed gradually from a bandlike structure, which was observed after a single pass, to one consisting of nearly equiaxed ultrafine grains (z0.7 mm) divided by high angle grain boundaries (GB) after four-pass DSR. A close microstructural observation using high resolution transmission electron microscopy showed that the GBs of the UFG Al sample were curved and wavy. Based on microstructural observations, the grain refinement mechanism occurring in the Al sample during multi-pass DSR was found to be governed by geometric dynamic recrystallization and continuous dynamic recrystallization. In addition, the deformation texture of the DSRtreated samples developed into the ideal shear texture consisting of a rotated Cube {001} < 110 > orientation and g-fiber (< 111 >//ND) with increasing number of operations. The tensile test results showed that the strength of the deformed samples increased with decreasing grain size while its tensile ductility was sacrificed. Moreover, the contribution of the strengthening mechanisms, such as solid solution, precipitation, grain size and dislocation strengthening, were discussed. (c) 2022 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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