Anomalous shape effect of nanosized helium bubble on the elastic field in irradiated tungsten

Abstract Bubble pressure and elastic response in helium-irradiated tungsten are systematically investigated in this study. An anomalous shape effect is found that the radial normal stress and mean stress distributions around a nanosized void or bubble are far from the spherical symmetry, which is as...

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Main Authors: Xinlong Huang, Chenyangtao Lv, Haijian Chu
Format: Article
Language:English
Published: Nature Publishing Group 2021-01-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-020-80167-7
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spelling doaj-276801c99c054198ae8d229243ddeb6a2021-01-17T12:35:20ZengNature Publishing GroupScientific Reports2045-23222021-01-011111710.1038/s41598-020-80167-7Anomalous shape effect of nanosized helium bubble on the elastic field in irradiated tungstenXinlong Huang0Chenyangtao Lv1Haijian Chu2School of Mechanics and Engineering Science, Shanghai UniversitySchool of Mechanics and Engineering Science, Shanghai UniversitySchool of Mechanics and Engineering Science, Shanghai UniversityAbstract Bubble pressure and elastic response in helium-irradiated tungsten are systematically investigated in this study. An anomalous shape effect is found that the radial normal stress and mean stress distributions around a nanosized void or bubble are far from the spherical symmetry, which is ascribed to polyhedral geometry characteristic of the nanosized bubble and physical mechanism transition from crystal surfaces dominated to the surface ledges and triple junctions dominated. Molecular simulation shows that Young–Laplace equation is not suitable for directly predicting equilibrium pressure for nanosized bubble in crystals. Consequently, a new criterion of average radial normal stress of spherical shell is proposed to polish the concept of equilibrium pressure of helium bubbles. Moreover, the dependences of bubble size, temperature and helium/vacancy ratio (He/Vac ratio) on the bubble pressure are all documented, which may provide an insight into the understanding of mechanical properties of helium-irradiated tungsten.https://doi.org/10.1038/s41598-020-80167-7
collection DOAJ
language English
format Article
sources DOAJ
author Xinlong Huang
Chenyangtao Lv
Haijian Chu
spellingShingle Xinlong Huang
Chenyangtao Lv
Haijian Chu
Anomalous shape effect of nanosized helium bubble on the elastic field in irradiated tungsten
Scientific Reports
author_facet Xinlong Huang
Chenyangtao Lv
Haijian Chu
author_sort Xinlong Huang
title Anomalous shape effect of nanosized helium bubble on the elastic field in irradiated tungsten
title_short Anomalous shape effect of nanosized helium bubble on the elastic field in irradiated tungsten
title_full Anomalous shape effect of nanosized helium bubble on the elastic field in irradiated tungsten
title_fullStr Anomalous shape effect of nanosized helium bubble on the elastic field in irradiated tungsten
title_full_unstemmed Anomalous shape effect of nanosized helium bubble on the elastic field in irradiated tungsten
title_sort anomalous shape effect of nanosized helium bubble on the elastic field in irradiated tungsten
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-01-01
description Abstract Bubble pressure and elastic response in helium-irradiated tungsten are systematically investigated in this study. An anomalous shape effect is found that the radial normal stress and mean stress distributions around a nanosized void or bubble are far from the spherical symmetry, which is ascribed to polyhedral geometry characteristic of the nanosized bubble and physical mechanism transition from crystal surfaces dominated to the surface ledges and triple junctions dominated. Molecular simulation shows that Young–Laplace equation is not suitable for directly predicting equilibrium pressure for nanosized bubble in crystals. Consequently, a new criterion of average radial normal stress of spherical shell is proposed to polish the concept of equilibrium pressure of helium bubbles. Moreover, the dependences of bubble size, temperature and helium/vacancy ratio (He/Vac ratio) on the bubble pressure are all documented, which may provide an insight into the understanding of mechanical properties of helium-irradiated tungsten.
url https://doi.org/10.1038/s41598-020-80167-7
work_keys_str_mv AT xinlonghuang anomalousshapeeffectofnanosizedheliumbubbleontheelasticfieldinirradiatedtungsten
AT chenyangtaolv anomalousshapeeffectofnanosizedheliumbubbleontheelasticfieldinirradiatedtungsten
AT haijianchu anomalousshapeeffectofnanosizedheliumbubbleontheelasticfieldinirradiatedtungsten
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