Investigation of point defect evolution and Voronoi cluster analysis for magnesium during nanoindentation

The present study investigates the effect of nanoindentation on single-crystal magnesium specimens using the embedded-atom method potential in molecular dynamics simulation. Analyses are done under dynamic loading where the load-bearing capacity and change in the structural configuration are studied...

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Main Authors: Pragyan Goswami, Snehanshu Pal, Manoj Gupta
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2023-03-01
Series:Journal of Magnesium and Alloys
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2213956722003127
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author Pragyan Goswami
Snehanshu Pal
Manoj Gupta
author_facet Pragyan Goswami
Snehanshu Pal
Manoj Gupta
author_sort Pragyan Goswami
collection DOAJ
description The present study investigates the effect of nanoindentation on single-crystal magnesium specimens using the embedded-atom method potential in molecular dynamics simulation. Analyses are done under dynamic loading where the load-bearing capacity and change in the structural configuration are studied on the basal (Z–direction) and two prismatic planes (X– and Y–directions) with varying indenter velocities. The investigation of structural evolution is done using atomic displacement analyses to measure the net magnitude of displacement, atomic strain analyses to evaluate the shear strain developed in the process, and Wigner–Seitz defect analyses to calculate the total vacancies at varied timesteps. Furthermore, Voronoi analyses are done when indented on the basal plane to identify the cluster distribution at different planar depths of the specimen. From the analyses, it has been observed that the load-bearing capacity of the specimen varies with the indentation velocity and the direction of indentation on the specimen. Additionally, it is seen that the observed shear and total atomic displacement in the Z–direction is the least in comparison to the other two axes. The partial dislocation 1/3<-12-10> is seen to be majorly present and the population of dislocation loops is more abundant for lower indenter velocities. Furthermore, clusters <0, 4, 4, 6> and <0, 6, 0, 8> are the major indices developed during nanoindentation on the basal plane where they exhibit symmetrical distribution as observed from the Z–direction.
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spelling doaj.art-b25f9ec7ab2e42c78671b4dda1de569f2023-05-03T04:10:01ZengKeAi Communications Co., Ltd.Journal of Magnesium and Alloys2213-95672023-03-0111310291042Investigation of point defect evolution and Voronoi cluster analysis for magnesium during nanoindentationPragyan Goswami0Snehanshu Pal1Manoj Gupta2Department of Metallurgical and Materials Engineering, National Institute of Technology, Rourkela, Odisha 769008, IndiaDepartment of Metallurgical and Materials Engineering, National Institute of Technology, Rourkela, Odisha 769008, IndiaDepartment of Mechanical Engineering, National University of Singapore, Singapore 117575, Singapore; Corresponding author.The present study investigates the effect of nanoindentation on single-crystal magnesium specimens using the embedded-atom method potential in molecular dynamics simulation. Analyses are done under dynamic loading where the load-bearing capacity and change in the structural configuration are studied on the basal (Z–direction) and two prismatic planes (X– and Y–directions) with varying indenter velocities. The investigation of structural evolution is done using atomic displacement analyses to measure the net magnitude of displacement, atomic strain analyses to evaluate the shear strain developed in the process, and Wigner–Seitz defect analyses to calculate the total vacancies at varied timesteps. Furthermore, Voronoi analyses are done when indented on the basal plane to identify the cluster distribution at different planar depths of the specimen. From the analyses, it has been observed that the load-bearing capacity of the specimen varies with the indentation velocity and the direction of indentation on the specimen. Additionally, it is seen that the observed shear and total atomic displacement in the Z–direction is the least in comparison to the other two axes. The partial dislocation 1/3<-12-10> is seen to be majorly present and the population of dislocation loops is more abundant for lower indenter velocities. Furthermore, clusters <0, 4, 4, 6> and <0, 6, 0, 8> are the major indices developed during nanoindentation on the basal plane where they exhibit symmetrical distribution as observed from the Z–direction.http://www.sciencedirect.com/science/article/pii/S2213956722003127MagnesiumMolecular dynamicsNanoindentationVoronoi analysisWigner–Seitz defect analysis
spellingShingle Pragyan Goswami
Snehanshu Pal
Manoj Gupta
Investigation of point defect evolution and Voronoi cluster analysis for magnesium during nanoindentation
Journal of Magnesium and Alloys
Magnesium
Molecular dynamics
Nanoindentation
Voronoi analysis
Wigner–Seitz defect analysis
title Investigation of point defect evolution and Voronoi cluster analysis for magnesium during nanoindentation
title_full Investigation of point defect evolution and Voronoi cluster analysis for magnesium during nanoindentation
title_fullStr Investigation of point defect evolution and Voronoi cluster analysis for magnesium during nanoindentation
title_full_unstemmed Investigation of point defect evolution and Voronoi cluster analysis for magnesium during nanoindentation
title_short Investigation of point defect evolution and Voronoi cluster analysis for magnesium during nanoindentation
title_sort investigation of point defect evolution and voronoi cluster analysis for magnesium during nanoindentation
topic Magnesium
Molecular dynamics
Nanoindentation
Voronoi analysis
Wigner–Seitz defect analysis
url http://www.sciencedirect.com/science/article/pii/S2213956722003127
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AT manojgupta investigationofpointdefectevolutionandvoronoiclusteranalysisformagnesiumduringnanoindentation