Cargando…

A Novel Microshear Geometry for Exploring the Influence of Void Swelling on the Mechanical Properties Induced by MeV Heavy Ion Irradiation

Small disks are often the specimen of choice for exposure in nuclear reactor environments, and this geometry invariably limits the types of mechanical testing that can be performed on the specimen. Recently, shear punch testing has been utilized to evaluate changes arising from neutron irradiation i...

Descripción completa

Detalles Bibliográficos
Autores principales: Gigax, Jonathan G., Chancey, Matthew R., Xie, Dongyue, Kim, Hyosim, Wang, Yongqiang, Maloy, Stuart A., Li, Nan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9231319/
https://www.ncbi.nlm.nih.gov/pubmed/35744308
http://dx.doi.org/10.3390/ma15124253
_version_ 1784735308270534656
author Gigax, Jonathan G.
Chancey, Matthew R.
Xie, Dongyue
Kim, Hyosim
Wang, Yongqiang
Maloy, Stuart A.
Li, Nan
author_facet Gigax, Jonathan G.
Chancey, Matthew R.
Xie, Dongyue
Kim, Hyosim
Wang, Yongqiang
Maloy, Stuart A.
Li, Nan
author_sort Gigax, Jonathan G.
collection PubMed
description Small disks are often the specimen of choice for exposure in nuclear reactor environments, and this geometry invariably limits the types of mechanical testing that can be performed on the specimen. Recently, shear punch testing has been utilized to evaluate changes arising from neutron irradiation in test reactor environments on these small disk specimens. As part of a broader effort to link accelerated testing using ion irradiation and conventional neutron irradiation techniques, a novel microshear specimen geometry was developed for use with heavy-ion irradiated specimens. The technique was demonstrated in pure Cu irradiated to 11 and 110 peak dpa with 10 MeV Cu ions. At 11 peak dpa, the Cu specimen had a high density of small voids in the irradiated region, while at 110 peak dpa, larger voids with an average void swelling of ~20% were observed. Micropillar and microshear specimens both exhibited hardening at 11 dpa, followed by softening at 110 dpa. The close alignment of the new microshear technique and more conventional micropillar testing, and the fact that both follow intuition, is a good first step towards applying microshear testing to a wider range of irradiated materials.
format Online
Article
Text
id pubmed-9231319
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-92313192022-06-25 A Novel Microshear Geometry for Exploring the Influence of Void Swelling on the Mechanical Properties Induced by MeV Heavy Ion Irradiation Gigax, Jonathan G. Chancey, Matthew R. Xie, Dongyue Kim, Hyosim Wang, Yongqiang Maloy, Stuart A. Li, Nan Materials (Basel) Article Small disks are often the specimen of choice for exposure in nuclear reactor environments, and this geometry invariably limits the types of mechanical testing that can be performed on the specimen. Recently, shear punch testing has been utilized to evaluate changes arising from neutron irradiation in test reactor environments on these small disk specimens. As part of a broader effort to link accelerated testing using ion irradiation and conventional neutron irradiation techniques, a novel microshear specimen geometry was developed for use with heavy-ion irradiated specimens. The technique was demonstrated in pure Cu irradiated to 11 and 110 peak dpa with 10 MeV Cu ions. At 11 peak dpa, the Cu specimen had a high density of small voids in the irradiated region, while at 110 peak dpa, larger voids with an average void swelling of ~20% were observed. Micropillar and microshear specimens both exhibited hardening at 11 dpa, followed by softening at 110 dpa. The close alignment of the new microshear technique and more conventional micropillar testing, and the fact that both follow intuition, is a good first step towards applying microshear testing to a wider range of irradiated materials. MDPI 2022-06-15 /pmc/articles/PMC9231319/ /pubmed/35744308 http://dx.doi.org/10.3390/ma15124253 Text en © 2022 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
Gigax, Jonathan G.
Chancey, Matthew R.
Xie, Dongyue
Kim, Hyosim
Wang, Yongqiang
Maloy, Stuart A.
Li, Nan
A Novel Microshear Geometry for Exploring the Influence of Void Swelling on the Mechanical Properties Induced by MeV Heavy Ion Irradiation
title A Novel Microshear Geometry for Exploring the Influence of Void Swelling on the Mechanical Properties Induced by MeV Heavy Ion Irradiation
title_full A Novel Microshear Geometry for Exploring the Influence of Void Swelling on the Mechanical Properties Induced by MeV Heavy Ion Irradiation
title_fullStr A Novel Microshear Geometry for Exploring the Influence of Void Swelling on the Mechanical Properties Induced by MeV Heavy Ion Irradiation
title_full_unstemmed A Novel Microshear Geometry for Exploring the Influence of Void Swelling on the Mechanical Properties Induced by MeV Heavy Ion Irradiation
title_short A Novel Microshear Geometry for Exploring the Influence of Void Swelling on the Mechanical Properties Induced by MeV Heavy Ion Irradiation
title_sort novel microshear geometry for exploring the influence of void swelling on the mechanical properties induced by mev heavy ion irradiation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9231319/
https://www.ncbi.nlm.nih.gov/pubmed/35744308
http://dx.doi.org/10.3390/ma15124253
work_keys_str_mv AT gigaxjonathang anovelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT chanceymatthewr anovelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT xiedongyue anovelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT kimhyosim anovelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT wangyongqiang anovelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT maloystuarta anovelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT linan anovelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT gigaxjonathang novelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT chanceymatthewr novelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT xiedongyue novelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT kimhyosim novelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT wangyongqiang novelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT maloystuarta novelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation
AT linan novelmicrosheargeometryforexploringtheinfluenceofvoidswellingonthemechanicalpropertiesinducedbymevheavyionirradiation