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      Mechanistic origin and prediction of enhanced ductility in magnesium alloys

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      Science
      American Association for the Advancement of Science (AAAS)

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          Abstract

          Pure magnesium exhibits poor ductility owing to pyramidal [Formula: see text] dislocation transformations to immobile structures, making this lowest-density structural metal unusable for many applications where it could enhance energy efficiency. We show why magnesium can be made ductile by specific dilute solute additions, which increase the [Formula: see text] cross-slip and multiplication rates to levels much faster than the deleterious [Formula: see text] transformation, enabling both favorable texture during processing and continued plastic straining during deformation. A quantitative theory establishes the conditions for ductility as a function of alloy composition in very good agreement with experiments on many existing magnesium alloys, and the solute-enhanced cross-slip mechanism is confirmed by transmission electron microscopy observations in magnesium-yttrium. The mechanistic theory can quickly screen for alloy compositions favoring conditions for high ductility and may help in the development of high-formability magnesium alloys.

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          Most cited references139

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              Plastic anisotropy and the role of non-basal slip in magnesium alloy AZ31B

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                Author and article information

                Journal
                Science
                Science
                American Association for the Advancement of Science (AAAS)
                0036-8075
                1095-9203
                January 25 2018
                January 26 2018
                January 26 2018
                January 25 2018
                : 359
                : 6374
                : 447-452
                Article
                10.1126/science.aap8716
                29371467
                7f6f0244-ee74-4760-b1c0-319b6152b567
                © 2018

                http://www.sciencemag.org/about/science-licenses-journal-article-reuse

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