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Data on the microstructure and deformation of Fe(50)Mn(25)Cr(15)Co(10)N(x (x=0∼1.6)) supporting the modifications of partial-dislocation-induced defects (PDIDs) and strength/ductility enhancement in metastable high entropy alloys

The data presented in this article are related to a research paper on the modification of deformed nanostructure and mechanical performance of metastable high entropy alloys (HEAs) [1]. Fe(50)Mn(25)Cr(15)Co(10) alloys with and without nitrogen were synthesized in a vacuum induction furnace using pur...

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Autores principales: Lee, Byung Ju, Song, Jae Sook, Moon, Won Jin, Hong, Sun Ig
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7807141/
https://www.ncbi.nlm.nih.gov/pubmed/33490333
http://dx.doi.org/10.1016/j.dib.2020.106713
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author Lee, Byung Ju
Song, Jae Sook
Moon, Won Jin
Hong, Sun Ig
author_facet Lee, Byung Ju
Song, Jae Sook
Moon, Won Jin
Hong, Sun Ig
author_sort Lee, Byung Ju
collection PubMed
description The data presented in this article are related to a research paper on the modification of deformed nanostructure and mechanical performance of metastable high entropy alloys (HEAs) [1]. Fe(50)Mn(25)Cr(15)Co(10) alloys with and without nitrogen were synthesized in a vacuum induction furnace using pure metals of 99.99% purity and FeCrN(2) as nitrogen source. The nitrogen content was determined by Leco O/N-836 determinator for nitrogen-doped alloys. Transmission electron microscopy (TEM) were carried at 200 kV equipped with energy dispersive spectroscopy (EDS). Tensile testing was performed at room temperature. The strain rate jump tests were conducted by changing the strain rate between 10(−3) and 10(−2) s(−1) to measure the strain rate sensitivity. The nanostructural evolutions by deformation including extended stacking faults (ESFs), ε-martensite and twins were examined using EBSD and TEM for the annealed samples and those strained to different strain levels. The role of partial dislocations on the formation of various PDIDs were analysed and the energies stored as deformed nanostructure (ESDN) after the PDID band formation were used to predict the evolution of various nanostructure with strain. The data and approach would provide a useful insight into the nanostructural evolution in metastable high entropy alloys.
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spelling pubmed-78071412021-01-22 Data on the microstructure and deformation of Fe(50)Mn(25)Cr(15)Co(10)N(x (x=0∼1.6)) supporting the modifications of partial-dislocation-induced defects (PDIDs) and strength/ductility enhancement in metastable high entropy alloys Lee, Byung Ju Song, Jae Sook Moon, Won Jin Hong, Sun Ig Data Brief Data Article The data presented in this article are related to a research paper on the modification of deformed nanostructure and mechanical performance of metastable high entropy alloys (HEAs) [1]. Fe(50)Mn(25)Cr(15)Co(10) alloys with and without nitrogen were synthesized in a vacuum induction furnace using pure metals of 99.99% purity and FeCrN(2) as nitrogen source. The nitrogen content was determined by Leco O/N-836 determinator for nitrogen-doped alloys. Transmission electron microscopy (TEM) were carried at 200 kV equipped with energy dispersive spectroscopy (EDS). Tensile testing was performed at room temperature. The strain rate jump tests were conducted by changing the strain rate between 10(−3) and 10(−2) s(−1) to measure the strain rate sensitivity. The nanostructural evolutions by deformation including extended stacking faults (ESFs), ε-martensite and twins were examined using EBSD and TEM for the annealed samples and those strained to different strain levels. The role of partial dislocations on the formation of various PDIDs were analysed and the energies stored as deformed nanostructure (ESDN) after the PDID band formation were used to predict the evolution of various nanostructure with strain. The data and approach would provide a useful insight into the nanostructural evolution in metastable high entropy alloys. Elsevier 2021-01-05 /pmc/articles/PMC7807141/ /pubmed/33490333 http://dx.doi.org/10.1016/j.dib.2020.106713 Text en © 2021 The Author(s) http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Data Article
Lee, Byung Ju
Song, Jae Sook
Moon, Won Jin
Hong, Sun Ig
Data on the microstructure and deformation of Fe(50)Mn(25)Cr(15)Co(10)N(x (x=0∼1.6)) supporting the modifications of partial-dislocation-induced defects (PDIDs) and strength/ductility enhancement in metastable high entropy alloys
title Data on the microstructure and deformation of Fe(50)Mn(25)Cr(15)Co(10)N(x (x=0∼1.6)) supporting the modifications of partial-dislocation-induced defects (PDIDs) and strength/ductility enhancement in metastable high entropy alloys
title_full Data on the microstructure and deformation of Fe(50)Mn(25)Cr(15)Co(10)N(x (x=0∼1.6)) supporting the modifications of partial-dislocation-induced defects (PDIDs) and strength/ductility enhancement in metastable high entropy alloys
title_fullStr Data on the microstructure and deformation of Fe(50)Mn(25)Cr(15)Co(10)N(x (x=0∼1.6)) supporting the modifications of partial-dislocation-induced defects (PDIDs) and strength/ductility enhancement in metastable high entropy alloys
title_full_unstemmed Data on the microstructure and deformation of Fe(50)Mn(25)Cr(15)Co(10)N(x (x=0∼1.6)) supporting the modifications of partial-dislocation-induced defects (PDIDs) and strength/ductility enhancement in metastable high entropy alloys
title_short Data on the microstructure and deformation of Fe(50)Mn(25)Cr(15)Co(10)N(x (x=0∼1.6)) supporting the modifications of partial-dislocation-induced defects (PDIDs) and strength/ductility enhancement in metastable high entropy alloys
title_sort data on the microstructure and deformation of fe(50)mn(25)cr(15)co(10)n(x (x=0∼1.6)) supporting the modifications of partial-dislocation-induced defects (pdids) and strength/ductility enhancement in metastable high entropy alloys
topic Data Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7807141/
https://www.ncbi.nlm.nih.gov/pubmed/33490333
http://dx.doi.org/10.1016/j.dib.2020.106713
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