Effect of dislocation density on improved radiation hardening resistance of nano-structured tungsten-rhenium

被引:37
作者
Armstrong, David E. J. [1 ]
Britton, T. B. [1 ]
机构
[1] Univ Oxford, Dept Mat, Oxford OX1 4JF, England
来源
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING | 2014年 / 611卷
基金
英国工程与自然科学研究理事会;
关键词
Nuclear fusion; Tungsten-rhenium; Nanoindentation; EBSD; Ion implantation; HE-COOLED DIVERTOR; IRRADIATION DAMAGE; ION IRRADIATION; IN-SITU; MICROSTRUCTURE; ALLOYS; NANOINDENTATION; LAMINATE; HARDNESS; FOIL;
D O I
10.1016/j.msea.2014.06.013
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Rolled tungsten 5 wt% rhenium sheet has been annealed to produce two microstructures. As received with a high dislocation density, measured using HR-EBSD, and pancake shaped grains with a thickness of approximate to 200 nm and annealed with equiaxed grains with average grain size of approximate to 90 mu m and low dislocation density. Both materials were ion implanted with 2 MeV W + ions to damage levels of 0.07, 0.4, 1.2 and 13 displacements per atom (dpa). Nanoindentation was used to measure change in hardness after implantations. While irradiation induced hardening is seen to saturate in the as received material at an increase of 0.4 GPa at 0.4 dpa, the relative hardness change is over four time higher in the annealed material (13 GPa) and saturation does not occur by 13 dpa. These differences in radiation response are due to the increased sinks for damage in the as received microstructure in the form of dislocation networks. This is advantageous for use of such nanostructured tungsten sheet in composite materials for structural applications as they will have improved radiation resistance as compared to bulk tungsten products. As well as showing the danger of using idealized microstructures for radiation damage studies. (C) 2014 The Authors. Published by Elsevier B.V.
引用
收藏
页码:388 / 393
页数:6
相关论文
共 39 条
  • [1] Effects of sequential tungsten and helium ion implantation on nano-indentation hardness of tungsten
    Armstrong, D. E. J.
    Edmondson, P. D.
    Roberts, S. G.
    [J]. APPLIED PHYSICS LETTERS, 2013, 102 (25)
  • [2] Hardening of self ion implanted tungsten and tungsten 5-wt% rhenium
    Armstrong, D. E. J.
    Yi, X.
    Marquis, E. A.
    Roberts, S. G.
    [J]. JOURNAL OF NUCLEAR MATERIALS, 2013, 432 (1-3) : 428 - 436
  • [3] Mechanical properties of ion-implanted tungsten-5wt% tantalum
    Armstrong, D. E. J.
    Wilkinson, A. J.
    Roberts, S. G.
    [J]. PHYSICA SCRIPTA, 2011, T145
  • [4] Probing Deformation and Revealing Microstructural Mechanisms with Cross-Correlation-Based, High-Resolution Electron Backscatter Diffraction
    Ben Britton, T.
    Jiang, Jun
    Karamched, Phani S.
    Wilkinson, Angus J.
    [J]. JOM, 2013, 65 (09) : 1245 - 1253
  • [5] Brimhall J. L., 1970, Radiation Effects, V3, P203, DOI 10.1080/00337577008236275
  • [6] Nanoindentation investigation of ion-irradiated Fe-Cr alloys using spherical indenters
    Bushby, Andrew J.
    Roberts, Steve G.
    Hardie, Christopher D.
    [J]. JOURNAL OF MATERIALS RESEARCH, 2012, 27 (01) : 85 - 90
  • [7] Atomic-scale design of radiation-tolerant nanocomposites
    Demkowicz, M. J.
    Bellon, P.
    Wirth, B. D.
    [J]. MRS BULLETIN, 2010, 35 (12) : 992 - 998
  • [8] Fracture toughness investigations of tungsten alloys and SPD tungsten alloys
    Faleschini, M.
    Kreuzer, H.
    Kiener, D.
    Pippan, R.
    [J]. JOURNAL OF NUCLEAR MATERIALS, 2007, 367 : 800 - 805
  • [9] Brittle-ductile transitions in polycrystalline tungsten
    Giannattasio, A.
    Yao, Z.
    Tarleton, E.
    Roberts, S. G.
    [J]. PHILOSOPHICAL MAGAZINE, 2010, 90 (30) : 3947 - 3959
  • [10] Neutron-induced transmutation effects in W and W-alloys in a fusion environment
    Gilbert, M. R.
    Sublet, J. -Ch
    [J]. NUCLEAR FUSION, 2011, 51 (04)