Mechanical properties of neutron-irradiated single crystal tungsten W(100) studied by indentation and FEM modelling

被引:19
作者
Dellis, Spilios [1 ]
Xiao, Xiazi [2 ]
Terentyev, Dmitry [3 ]
Mergia, Konstantina [1 ]
Krimpalis, Spyros [1 ]
Bakaev, Alexander [3 ]
Messoloras, Spyros [1 ]
机构
[1] NCSR Demokritos, Inst Nucl & Radiol Sci & Technol, Energy & Safety, Aghia Paraskevi 15310, Greece
[2] Cent South Univ, Sch Civil Engn, Dept Mech, Changsha 410075, Peoples R China
[3] SCK CEN, Nucl Mat Sci Inst, Boeretang 200, B-2400 Mol, Belgium
关键词
Tungsten; Plasma facing materials; Neutron irradiation; Radiation damage; Indentation; Impulse excitation technique; Crystal plasticity; Finite element method; MICROSTRUCTURAL DEVELOPMENT; PURE TUNGSTEN; DISLOCATION LOOPS; ELASTIC-CONSTANTS; BCC METALS; DEFORMATION; TEMPERATURE; COPPER; PLASTICITY; EVOLUTION;
D O I
10.1016/j.jnucmat.2021.152985
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The aim of this work is to investigate the effect of high-temperature neutron irradiation on the mechanical properties of single-crystal tungsten W(100) studied by mechanical testing and modelling. Neutron irradiation up to 0.12 displacements per atom was performed at 60 0, 80 0, 90 0 and 120 0 degrees C in the Belgium material test reactor BR2 at SCK center dot CEN in Mol. The mechanical properties of the irradiated tungsten were assessed by impulse excitation and depth-sensing indentation measurements. The values of Young's modulus, shear modulus and Poisson ratio are not affected by the irradiation. The mean hardness of the irradiated tungsten increases by 48, 45, 46, and 34% after irradiation at 60 0, 80 0, 90 0 and 120 0 degrees C, respectively. The results obtained by the instrumented hardness tests were used as input for the finite element method model, applied to deduce the contributions coming from the neutron irradiation defects to the plastic deformation upon the indentation process, which include the impediment of gliding dislocations by sessile defects and modification of surface morphology due to the inhibited strain hardening ability through the dislocation-defect interaction. The validation of the fitted constitutive laws was realized by the crystal plasticity finite element method (CP-FEM) model which was applied to simulate the indentation load-depth curves, with certain assumptions on the irradiation-induced microstructure, and to calculate the distribution of stress under the indenter to investigate the extension of the plastic zone in the process of the indentation. (c) 2021 The Authors. Published by Elsevier B.V. All rights reserved.
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页数:10
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