Nanoindentation study of the combined effects of crystallography, heat treatment and exposure to high-flux deuterium plasma in tungsten

Tungsten samples were heat-treated to achieve partial recrystallization and exposed to high ion flux deuterium plasma at different temperatures and fluences. Continuous stiffness nanoindentation measurements of near-surface hardness were performed in the grains of specific annealing states and of sp...

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Main Authors: Zayachuk, Y, Armstrong, D, Bystrov, K, Van Boxel, S, Morgan, T, Roberts, S
Format: Journal article
Published: Elsevier 2017
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author Zayachuk, Y
Armstrong, D
Bystrov, K
Van Boxel, S
Morgan, T
Roberts, S
author_facet Zayachuk, Y
Armstrong, D
Bystrov, K
Van Boxel, S
Morgan, T
Roberts, S
author_sort Zayachuk, Y
collection OXFORD
description Tungsten samples were heat-treated to achieve partial recrystallization and exposed to high ion flux deuterium plasma at different temperatures and fluences. Continuous stiffness nanoindentation measurements of near-surface hardness were performed in the grains of specific annealing states and of specific crystallographic orientation, determined by electron backscatter diffraction (EBSD); indentation pile-up was investigated using surface profilometry. Bulk hardness of unexposed tungsten does not strongly depend on grain orientation, but depends on the annealing state of the grain, with values between ∼4.3 GPa for recrystallized grains and ∼5.5 for non-recrystallized ones. Grains with <111> surface normal orientation feature the least pile-up, while grains with <001> orientation the most; pile-up also depends on the annealing state, being generally lower in recrystallized grains. Plasma exposure leads to the increase of hardness, most significantly near the surface. The width of plasma-affected zone increases with the increase of exposure temperature and fluence, as well in recrystallized grains, correlating with the increase of diffusion depth. Plasma exposure does not lead to the emergence of orientation-dependence of hardness. Both indentation pile-up and near-surface indentation pop-ins are generally suppressed by plasma exposure.
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spelling oxford-uuid:3e93ab52-3b66-4a6a-94ee-3e1cadd2f2e62022-03-26T14:26:23ZNanoindentation study of the combined effects of crystallography, heat treatment and exposure to high-flux deuterium plasma in tungstenJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:3e93ab52-3b66-4a6a-94ee-3e1cadd2f2e6Symplectic Elements at OxfordElsevier2017Zayachuk, YArmstrong, DBystrov, KVan Boxel, SMorgan, TRoberts, STungsten samples were heat-treated to achieve partial recrystallization and exposed to high ion flux deuterium plasma at different temperatures and fluences. Continuous stiffness nanoindentation measurements of near-surface hardness were performed in the grains of specific annealing states and of specific crystallographic orientation, determined by electron backscatter diffraction (EBSD); indentation pile-up was investigated using surface profilometry. Bulk hardness of unexposed tungsten does not strongly depend on grain orientation, but depends on the annealing state of the grain, with values between ∼4.3 GPa for recrystallized grains and ∼5.5 for non-recrystallized ones. Grains with <111> surface normal orientation feature the least pile-up, while grains with <001> orientation the most; pile-up also depends on the annealing state, being generally lower in recrystallized grains. Plasma exposure leads to the increase of hardness, most significantly near the surface. The width of plasma-affected zone increases with the increase of exposure temperature and fluence, as well in recrystallized grains, correlating with the increase of diffusion depth. Plasma exposure does not lead to the emergence of orientation-dependence of hardness. Both indentation pile-up and near-surface indentation pop-ins are generally suppressed by plasma exposure.
spellingShingle Zayachuk, Y
Armstrong, D
Bystrov, K
Van Boxel, S
Morgan, T
Roberts, S
Nanoindentation study of the combined effects of crystallography, heat treatment and exposure to high-flux deuterium plasma in tungsten
title Nanoindentation study of the combined effects of crystallography, heat treatment and exposure to high-flux deuterium plasma in tungsten
title_full Nanoindentation study of the combined effects of crystallography, heat treatment and exposure to high-flux deuterium plasma in tungsten
title_fullStr Nanoindentation study of the combined effects of crystallography, heat treatment and exposure to high-flux deuterium plasma in tungsten
title_full_unstemmed Nanoindentation study of the combined effects of crystallography, heat treatment and exposure to high-flux deuterium plasma in tungsten
title_short Nanoindentation study of the combined effects of crystallography, heat treatment and exposure to high-flux deuterium plasma in tungsten
title_sort nanoindentation study of the combined effects of crystallography heat treatment and exposure to high flux deuterium plasma in tungsten
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AT bystrovk nanoindentationstudyofthecombinedeffectsofcrystallographyheattreatmentandexposuretohighfluxdeuteriumplasmaintungsten
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AT morgant nanoindentationstudyofthecombinedeffectsofcrystallographyheattreatmentandexposuretohighfluxdeuteriumplasmaintungsten
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