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contributor authorRustom, Shelby
contributor authorPaudel, YubRaj
contributor authorMujahid, Shiraz
contributor authorCagle, Matthew
contributor authorAnantwar, Prathmesh
contributor authorHazeli, Kavan
contributor authorMoser, Robert
contributor authorPaliwal, Bhasker
contributor authorRhee, Hongjoo
contributor authorEl Kadiri, Haitham
contributor authorBarrett, Christopher D.
date accessioned2023-08-16T18:14:11Z
date available2023-08-16T18:14:11Z
date copyright1/5/2023 12:00:00 AM
date issued2023
identifier issn2770-3495
identifier otheraoje_2_021001.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4291678
description abstractMagnesium (Mg) alloys exhibit poor room temperature ductility, which prohibits forming operations in cost-effective industrial settings and the use of these alloys in critical safety components. Profuse twinning in Mg alloys is widely associated with high strain path anisotropy and low material ductility. Twinning typically propagates across the grains through the autocatalysis phenomena in typical texture conditions. Twin–twin and twin–slip interactions often lead to high strain incompatibilities and eventually failure. One way to avoid such premature failure is to prevent the early nucleation of twins. This research tests a hypothesis that a strong yet ductile phase surrounding each individual grain in traditional polycrystals could inhibit twin accommodation effects and thus twin nucleation and autocatalysis mechanisms at grain boundaries. As a proof-of-concept for testing this hypothesis, sharply textured magnesium sheets plated with different materials were subjected to four-point bending to assess the potential of a surface/grain boundary barrier in limiting twinning extent. The results showed that Mg AZ31 alloy plated with zinc alleviated twin nucleation while improving the strength of the alloy.
publisherThe American Society of Mechanical Engineers (ASME)
titleManufacturing Strategies to Mitigate Deformation Twinning in Magnesium
typeJournal Paper
journal volume2
journal titleASME Open Journal of Engineering
identifier doi10.1115/1.4056553
journal fristpage21001-1
journal lastpage21001-6
page6
treeASME Open Journal of Engineering:;2023:;volume( 002 )
contenttypeFulltext


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