Helium Effects on the Mechanical Properties of Nanocrystalline Fe: Based on Molecular Dynamics

A molecular dynamics (MD) simulation study was performed to investigate the effects of helium (He) on the mechanical properties of nanocrystalline body-centered cubic iron (BCC Fe). Simulated X-ray diffraction (XRD) was used to explore the relationship between the generation of cracks and the change...

Full description

Bibliographic Details
Main Authors: Chunping Xu, Dongyan Yang
Format: Article
Language:English
Published: MDPI AG 2021-05-01
Series:Crystals
Subjects:
Online Access:https://www.mdpi.com/2073-4352/11/5/532
id doaj-135b6ad78d974a5bb42e975cad61b024
record_format Article
spelling doaj-135b6ad78d974a5bb42e975cad61b0242021-05-31T23:41:04ZengMDPI AGCrystals2073-43522021-05-011153253210.3390/cryst11050532Helium Effects on the Mechanical Properties of Nanocrystalline Fe: Based on Molecular DynamicsChunping Xu0Dongyan Yang1College of Nuclear Equipment and Nuclear Engineering, Yantai University, Yantai 264005, ChinaSchool of Nuclear Science and Technology, Lanzhou University, Lanzhou 730000, ChinaA molecular dynamics (MD) simulation study was performed to investigate the effects of helium (He) on the mechanical properties of nanocrystalline body-centered cubic iron (BCC Fe). Simulated X-ray diffraction (XRD) was used to explore the relationship between the generation of cracks and the change of the crystal structure in nanocrystalline BCC Fe during tensile deformation. It is observed that the peak stress and the elastic modulus decrease with increasing concentration of He atoms, which are introduced into the grain boundary (GB) region of nanocrystalline Fe. The generation and connection of intergranular cracks are enhanced by He atoms. Significant peak separation, which is associated with the generation of cracks, is found in the simulated XRD patterns of nanocrystalline Fe during the tensile process. The lower diffraction angle of the {211}′ peak suggests a more serious lattice distortion during loading. For all nanocrystalline Fe deformed to 6% strain, the degree and fraction of the lattice distortion increases with the increasing loading stress.https://www.mdpi.com/2073-4352/11/5/532simulated XRDcrack generationhelium effectsnanocrystalline BCC Fe
collection DOAJ
language English
format Article
sources DOAJ
author Chunping Xu
Dongyan Yang
spellingShingle Chunping Xu
Dongyan Yang
Helium Effects on the Mechanical Properties of Nanocrystalline Fe: Based on Molecular Dynamics
Crystals
simulated XRD
crack generation
helium effects
nanocrystalline BCC Fe
author_facet Chunping Xu
Dongyan Yang
author_sort Chunping Xu
title Helium Effects on the Mechanical Properties of Nanocrystalline Fe: Based on Molecular Dynamics
title_short Helium Effects on the Mechanical Properties of Nanocrystalline Fe: Based on Molecular Dynamics
title_full Helium Effects on the Mechanical Properties of Nanocrystalline Fe: Based on Molecular Dynamics
title_fullStr Helium Effects on the Mechanical Properties of Nanocrystalline Fe: Based on Molecular Dynamics
title_full_unstemmed Helium Effects on the Mechanical Properties of Nanocrystalline Fe: Based on Molecular Dynamics
title_sort helium effects on the mechanical properties of nanocrystalline fe: based on molecular dynamics
publisher MDPI AG
series Crystals
issn 2073-4352
publishDate 2021-05-01
description A molecular dynamics (MD) simulation study was performed to investigate the effects of helium (He) on the mechanical properties of nanocrystalline body-centered cubic iron (BCC Fe). Simulated X-ray diffraction (XRD) was used to explore the relationship between the generation of cracks and the change of the crystal structure in nanocrystalline BCC Fe during tensile deformation. It is observed that the peak stress and the elastic modulus decrease with increasing concentration of He atoms, which are introduced into the grain boundary (GB) region of nanocrystalline Fe. The generation and connection of intergranular cracks are enhanced by He atoms. Significant peak separation, which is associated with the generation of cracks, is found in the simulated XRD patterns of nanocrystalline Fe during the tensile process. The lower diffraction angle of the {211}′ peak suggests a more serious lattice distortion during loading. For all nanocrystalline Fe deformed to 6% strain, the degree and fraction of the lattice distortion increases with the increasing loading stress.
topic simulated XRD
crack generation
helium effects
nanocrystalline BCC Fe
url https://www.mdpi.com/2073-4352/11/5/532
work_keys_str_mv AT chunpingxu heliumeffectsonthemechanicalpropertiesofnanocrystallinefebasedonmoleculardynamics
AT dongyanyang heliumeffectsonthemechanicalpropertiesofnanocrystallinefebasedonmoleculardynamics
_version_ 1721416793880264704