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Understanding the Microstructure Evolution of 8Cr4Mo4V Steel under High-Dose-Rate Ion Implantation

In this study, the effect of microstructure under various dose rates of plasma immersion ion implantation on 8Cr4Mo4V steel has been investigated for crystallite size, lattice strain and dislocation density. The phase composition and structure parameters including crystallite size, dislocation densi...

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Autores principales: Miao, Bin, Zhang, Jinming, Guo, Jiaxu, Ma, Xinxin, Wang, Liqin, Zhang, Xinghong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10488348/
https://www.ncbi.nlm.nih.gov/pubmed/37687568
http://dx.doi.org/10.3390/ma16175876
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author Miao, Bin
Zhang, Jinming
Guo, Jiaxu
Ma, Xinxin
Wang, Liqin
Zhang, Xinghong
author_facet Miao, Bin
Zhang, Jinming
Guo, Jiaxu
Ma, Xinxin
Wang, Liqin
Zhang, Xinghong
author_sort Miao, Bin
collection PubMed
description In this study, the effect of microstructure under various dose rates of plasma immersion ion implantation on 8Cr4Mo4V steel has been investigated for crystallite size, lattice strain and dislocation density. The phase composition and structure parameters including crystallite size, dislocation density and lattice strain have been investigated by X-ray diffraction (XRD) measurements and determined from Scherrer’s equation and three different Williamson–Hall (W-H) methods. The obtained results reveal that a refined crystallite size, enlarged microstrain and increased dislocation density can be obtained for the 8Cr4Mo4V steel treated by different dose rates of ion implantation. Compared to the crystallite size (15.95 nm), microstrain (5.69 × 10(−3)) and dislocation density (8.48 × 10(15)) of the dose rate of 2.60 × 10(17) ions/cm(2)·h, the finest grain size, the largest microstrain and the highest dislocation density of implanted samples can be achieved when the dose rate rises to 5.18 × 10(17) ions/cm(2)·h, the effect of refining is 26.13%, and the increment of microstrain and dislocation density are 26.3% and 45.6%, respectively. Moreover, the Williamson–Hall plots are fitted linearly by taking βcosθ along the y-axis and 4sinθ or 4sinθ/Y(hkl) or 4sinθ(2/Y(hkl))(1/2) along the x-axis. In all of the W-H graphs, it can be observed that some of the implanted samples present a negative and a positive slope; a negative and a positive slope in the plot indicate the presence of compressive and tensile strain in the material.
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spelling pubmed-104883482023-09-09 Understanding the Microstructure Evolution of 8Cr4Mo4V Steel under High-Dose-Rate Ion Implantation Miao, Bin Zhang, Jinming Guo, Jiaxu Ma, Xinxin Wang, Liqin Zhang, Xinghong Materials (Basel) Article In this study, the effect of microstructure under various dose rates of plasma immersion ion implantation on 8Cr4Mo4V steel has been investigated for crystallite size, lattice strain and dislocation density. The phase composition and structure parameters including crystallite size, dislocation density and lattice strain have been investigated by X-ray diffraction (XRD) measurements and determined from Scherrer’s equation and three different Williamson–Hall (W-H) methods. The obtained results reveal that a refined crystallite size, enlarged microstrain and increased dislocation density can be obtained for the 8Cr4Mo4V steel treated by different dose rates of ion implantation. Compared to the crystallite size (15.95 nm), microstrain (5.69 × 10(−3)) and dislocation density (8.48 × 10(15)) of the dose rate of 2.60 × 10(17) ions/cm(2)·h, the finest grain size, the largest microstrain and the highest dislocation density of implanted samples can be achieved when the dose rate rises to 5.18 × 10(17) ions/cm(2)·h, the effect of refining is 26.13%, and the increment of microstrain and dislocation density are 26.3% and 45.6%, respectively. Moreover, the Williamson–Hall plots are fitted linearly by taking βcosθ along the y-axis and 4sinθ or 4sinθ/Y(hkl) or 4sinθ(2/Y(hkl))(1/2) along the x-axis. In all of the W-H graphs, it can be observed that some of the implanted samples present a negative and a positive slope; a negative and a positive slope in the plot indicate the presence of compressive and tensile strain in the material. MDPI 2023-08-28 /pmc/articles/PMC10488348/ /pubmed/37687568 http://dx.doi.org/10.3390/ma16175876 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Miao, Bin
Zhang, Jinming
Guo, Jiaxu
Ma, Xinxin
Wang, Liqin
Zhang, Xinghong
Understanding the Microstructure Evolution of 8Cr4Mo4V Steel under High-Dose-Rate Ion Implantation
title Understanding the Microstructure Evolution of 8Cr4Mo4V Steel under High-Dose-Rate Ion Implantation
title_full Understanding the Microstructure Evolution of 8Cr4Mo4V Steel under High-Dose-Rate Ion Implantation
title_fullStr Understanding the Microstructure Evolution of 8Cr4Mo4V Steel under High-Dose-Rate Ion Implantation
title_full_unstemmed Understanding the Microstructure Evolution of 8Cr4Mo4V Steel under High-Dose-Rate Ion Implantation
title_short Understanding the Microstructure Evolution of 8Cr4Mo4V Steel under High-Dose-Rate Ion Implantation
title_sort understanding the microstructure evolution of 8cr4mo4v steel under high-dose-rate ion implantation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10488348/
https://www.ncbi.nlm.nih.gov/pubmed/37687568
http://dx.doi.org/10.3390/ma16175876
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