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Helium-implantation-induced lattice strains and defects in tungsten probed by X-ray micro-diffraction

Journal Article · · Materials & Design
 [1];  [2];  [2];  [1]
  1. Univ. of Oxford (United Kingdom). Dept. of Engineering Science
  2. Argonne National Lab. (ANL), Argonne, IL (United States). Advanced Photon Source (APS)

Tungsten is the main candidate material for plasma-facing armour components in future fusion reactors. Bombardment with energetic fusion neutrons causes collision cascade damage and defect formation. Interaction of defects with helium, produced by transmutation and injected from the plasma, modifies defect retention and behaviour. Here we investigate the residual lattice strains caused by different doses of helium-ion-implantation into tungsten and tungsten-rhenium alloys. Energy and depth-resolved synchrotron X-ray micro-diffraction uniquely permits the measurement of lattice strain with sub-micron 3D spatial resolution and ~10-4 strain sensitivity. Increase of helium dose from 300 appm to 3000 appm increases volumetric strain by only ~2.4 times, indicating that defect retention per injected helium is ~3 times higher at low helium doses. This suggests defect retention is not a simple function of implanted helium dose, but strongly depends on material composition and presence of impurities. Conversely, analysis of W-1 wt% Re alloy samples and of different crystal orientations shows that both the presence of rhenium, and crystal orientation, have a comparatively small effect on defect retention. These insights are key for the design of armour components in future reactors where it will be essential to account for irradiation-induced dimensional change when predicting component lifetime and performance.

Research Organization:
Argonne National Laboratory (ANL), Argonne, IL (United States)
Sponsoring Organization:
Leverhulme Trust; USDOE Office of Science (SC); Engineering and Physical Sciences Research Council (EPSRC)
Grant/Contract Number:
AC02-06CH11357
OSTI ID:
1507089
Alternate ID(s):
OSTI ID: 23091977
Journal Information:
Materials & Design, Journal Name: Materials & Design Journal Issue: C Vol. 160; ISSN 0264-1275
Publisher:
ElsevierCopyright Statement
Country of Publication:
United States
Language:
English

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Cited By (4)

Hardening and Strain Localisation in Helium-Ion-Implanted Tungsten journal January 2019
Recent advances in characterising irradiation damage in tungsten for fusion power journal November 2019
Hardening and Strain Localisation in Helium-Ion-Implanted Tungsten journal December 2019
Orientation-dependent indentation response of helium-implanted tungsten journal June 2019

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