Cargando…

Exploring the Relationship between the Structural Characteristics and Mechanical Behavior of Multicomponent Fe-Containing Phases: Experimental Studies and First-Principles Calculations

A comprehensive understanding of the structural characteristics and mechanical behavior of Fe-containing phases is important for high-Fe-level Al-Si alloys. In this paper, the crystal characteristics, thermal stability, thermophysical properties and mechanical behavior of multicomponent α-AlFeMnSi a...

Descripción completa

Detalles Bibliográficos
Autores principales: Wang, Dongtao, Zhang, Xiaozu, Nagaumi, Hiromi, Zhang, Minghe, Zhou, Pengfei, Wang, Rui, Zhang, Bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10609004/
https://www.ncbi.nlm.nih.gov/pubmed/37894620
http://dx.doi.org/10.3390/molecules28207141
_version_ 1785127911617986560
author Wang, Dongtao
Zhang, Xiaozu
Nagaumi, Hiromi
Zhang, Minghe
Zhou, Pengfei
Wang, Rui
Zhang, Bo
author_facet Wang, Dongtao
Zhang, Xiaozu
Nagaumi, Hiromi
Zhang, Minghe
Zhou, Pengfei
Wang, Rui
Zhang, Bo
author_sort Wang, Dongtao
collection PubMed
description A comprehensive understanding of the structural characteristics and mechanical behavior of Fe-containing phases is important for high-Fe-level Al-Si alloys. In this paper, the crystal characteristics, thermal stability, thermophysical properties and mechanical behavior of multicomponent α-AlFeMnSi and α-AlFeMnCrSi phases are investigated by experimental studies and first-principles calculations. The results indicate that it is easier for Fe and Cr to substitute the Mn-12j site in α-AlMnSi in thermodynamics; Cr is preferred to Fe for substituting Mn-12j/k sites due to its lower formation enthalpy after single substitutions at Mn atom sites. The α-AlFeMnCrSi phase shows higher thermal stability, modulus and intrinsic hardness and a lower volumetric thermal expansion coefficient at different temperatures due to the strong chemical bonding of Si-Fe and Si-Cr. Moreover, the α-AlFeMnCrSi phase has a higher ideal strength (10.65 GPa) and lower stacking fault energy (1.10 × 10(3) mJ/m(2)). The stacking fault energy evolution of the different Fe-containing phases is mainly attributed to the differential charge-density redistribution. The strong chemical bonds of Si-Fe, Si-Mn and Si-Cr are important factors affecting the thermophysical and mechanical behaviors of the α-AlFeMnCrSi phase.
format Online
Article
Text
id pubmed-10609004
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-106090042023-10-28 Exploring the Relationship between the Structural Characteristics and Mechanical Behavior of Multicomponent Fe-Containing Phases: Experimental Studies and First-Principles Calculations Wang, Dongtao Zhang, Xiaozu Nagaumi, Hiromi Zhang, Minghe Zhou, Pengfei Wang, Rui Zhang, Bo Molecules Article A comprehensive understanding of the structural characteristics and mechanical behavior of Fe-containing phases is important for high-Fe-level Al-Si alloys. In this paper, the crystal characteristics, thermal stability, thermophysical properties and mechanical behavior of multicomponent α-AlFeMnSi and α-AlFeMnCrSi phases are investigated by experimental studies and first-principles calculations. The results indicate that it is easier for Fe and Cr to substitute the Mn-12j site in α-AlMnSi in thermodynamics; Cr is preferred to Fe for substituting Mn-12j/k sites due to its lower formation enthalpy after single substitutions at Mn atom sites. The α-AlFeMnCrSi phase shows higher thermal stability, modulus and intrinsic hardness and a lower volumetric thermal expansion coefficient at different temperatures due to the strong chemical bonding of Si-Fe and Si-Cr. Moreover, the α-AlFeMnCrSi phase has a higher ideal strength (10.65 GPa) and lower stacking fault energy (1.10 × 10(3) mJ/m(2)). The stacking fault energy evolution of the different Fe-containing phases is mainly attributed to the differential charge-density redistribution. The strong chemical bonds of Si-Fe, Si-Mn and Si-Cr are important factors affecting the thermophysical and mechanical behaviors of the α-AlFeMnCrSi phase. MDPI 2023-10-17 /pmc/articles/PMC10609004/ /pubmed/37894620 http://dx.doi.org/10.3390/molecules28207141 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
Wang, Dongtao
Zhang, Xiaozu
Nagaumi, Hiromi
Zhang, Minghe
Zhou, Pengfei
Wang, Rui
Zhang, Bo
Exploring the Relationship between the Structural Characteristics and Mechanical Behavior of Multicomponent Fe-Containing Phases: Experimental Studies and First-Principles Calculations
title Exploring the Relationship between the Structural Characteristics and Mechanical Behavior of Multicomponent Fe-Containing Phases: Experimental Studies and First-Principles Calculations
title_full Exploring the Relationship between the Structural Characteristics and Mechanical Behavior of Multicomponent Fe-Containing Phases: Experimental Studies and First-Principles Calculations
title_fullStr Exploring the Relationship between the Structural Characteristics and Mechanical Behavior of Multicomponent Fe-Containing Phases: Experimental Studies and First-Principles Calculations
title_full_unstemmed Exploring the Relationship between the Structural Characteristics and Mechanical Behavior of Multicomponent Fe-Containing Phases: Experimental Studies and First-Principles Calculations
title_short Exploring the Relationship between the Structural Characteristics and Mechanical Behavior of Multicomponent Fe-Containing Phases: Experimental Studies and First-Principles Calculations
title_sort exploring the relationship between the structural characteristics and mechanical behavior of multicomponent fe-containing phases: experimental studies and first-principles calculations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10609004/
https://www.ncbi.nlm.nih.gov/pubmed/37894620
http://dx.doi.org/10.3390/molecules28207141
work_keys_str_mv AT wangdongtao exploringtherelationshipbetweenthestructuralcharacteristicsandmechanicalbehaviorofmulticomponentfecontainingphasesexperimentalstudiesandfirstprinciplescalculations
AT zhangxiaozu exploringtherelationshipbetweenthestructuralcharacteristicsandmechanicalbehaviorofmulticomponentfecontainingphasesexperimentalstudiesandfirstprinciplescalculations
AT nagaumihiromi exploringtherelationshipbetweenthestructuralcharacteristicsandmechanicalbehaviorofmulticomponentfecontainingphasesexperimentalstudiesandfirstprinciplescalculations
AT zhangminghe exploringtherelationshipbetweenthestructuralcharacteristicsandmechanicalbehaviorofmulticomponentfecontainingphasesexperimentalstudiesandfirstprinciplescalculations
AT zhoupengfei exploringtherelationshipbetweenthestructuralcharacteristicsandmechanicalbehaviorofmulticomponentfecontainingphasesexperimentalstudiesandfirstprinciplescalculations
AT wangrui exploringtherelationshipbetweenthestructuralcharacteristicsandmechanicalbehaviorofmulticomponentfecontainingphasesexperimentalstudiesandfirstprinciplescalculations
AT zhangbo exploringtherelationshipbetweenthestructuralcharacteristicsandmechanicalbehaviorofmulticomponentfecontainingphasesexperimentalstudiesandfirstprinciplescalculations