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Microstructural evolution and intermetallic formation in Zn-3Mg (wt%) powder mixture processed by high-pressure torsion

dc.contributor.authorRahman, Tanzilur
dc.contributor.authorYilmazer, Hakan
dc.contributor.authorDikici, Burak
dc.contributor.authorEdalati, Kaveh
dc.contributor.authorPoplawsky, Jonathan D.
dc.contributor.authorBoehlert, Carl J.
dc.date.accessioned2026-06-27T14:56:06Z
dc.date.issued2023
dc.description.abstractSevere plastic deformation (SPD) techniques have been used extensively over the past 40 years for producing strong metals and alloys. High-pressure torsion (HPT) is one of the most promising SPD techniques for achieving high strength through nanoscale grain refinement and phase transformation. In this research, a mixture of pure zinc (Zn) and magnesium (Mg) powders, Zn-3Mg (wt%), was HPT-processed under a pressure of 6 GPa for 1, 5, 10, 20, and 30 turns at room temperature to achieve a high strength biodegradable material. In order to un-derstand the effects of pre-consolidation on the resulting microstructure and hardness, HPT processing was performed on loose powders placed in the die and also on a pre-compacted powder mixture and the resulting HPT disks were characterized by X-ray diffraction, scanning electron microscopy, atom probe tomography, and Vickers microhardness. In both cases, the HPT disk microstructures contained nanoscale grains, and stable and metastable strain-induced intermetallics, but an unusual softening appeared at large shear strains. Grain size, grain morphology, and the formation of different intermetallics were analyzed to explain the unusual hardness distribution, and it was found that an inverse Hall-Petch relationship between hardness and grain size exists. It is suggested that thermally-activated phenomena such as grain boundary sliding contributed to the strain-induced softening of this nano-structured biomaterial due to its low melting point. The current results are compared with those for HPT-processed cast alloys and hybrids of the same composition.en
dc.description.sponsorshipCenter for Nanophase Materials Sciences (CNMS)
dc.description.sponsorshipUS Department of Energy, Office of Science User Facility at Oak Ridge National Laboratory
dc.description.sponsorshipNational Science Foundation Division of Materials Research through the Metals and Metallic Nanostructures [DMR 1607942]
dc.description.sponsorshipNational Science Foundation Division of Engineering through the Civil, Mechanical and Manufacturing Innovation Program [2148646]
dc.description.urihttps://doi.org/10.1016/j.jallcom.2023.172101
dc.identifier.doi10.1016/j.jallcom.2023.172101
dc.identifier.eissn1873-4669
dc.identifier.issn0925-8388
dc.identifier.urihttps://hdl.handle.net/20.500.14981/66413
dc.identifier.volume968
dc.identifier.wos001079146100001
dc.language.isoeng
dc.publisherELSEVIER SCIENCE SA
dc.relation.ispartofJOURNAL OF ALLOYS AND COMPOUNDS
dc.rightsopenAccess
dc.subjectHigh-pressure torsion
dc.subjectZinc
dc.subjectMagnesium
dc.subjectZn -Mg intermetallics
dc.subjectUltrafine-grained biomaterial
dc.subjectSEVERE PLASTIC-DEFORMATION
dc.subjectPURE METALS
dc.subjectGRAIN-SIZE
dc.subjectDYNAMIC RECRYSTALLIZATION
dc.subjectPHASE-TRANSITIONS
dc.subjectCU
dc.subjectCONSOLIDATION
dc.subjectBEHAVIOR
dc.subjectALLOYS
dc.subjectCOLD
dc.subjectChemistry
dc.subjectMaterials Science
dc.subjectMetallurgy & Metallurgical Engineering
dc.titleMicrostructural evolution and intermetallic formation in Zn-3Mg (wt%) powder mixture processed by high-pressure torsion
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

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