Abstract
Deformation of proton-irradiated chromium was investigated using micro-pillar compression and electron microscopy. After 2 MeV proton irradiation at 350 °C, four micro-pillars were prepared from a single grain on the polished specimen cross section. Depending on the distance away from the irradiated surface, hardness as a function of local damage level was studied. All pillars developed a narrow deformation band on one set of near-adjacent {110} planes, arising from closely-positioned parallel gliding. The critical resolved shear stress for gliding along 〈111〉/{110} was measured to be 59.6 MPa in unirradiated material beyond the proton range. The critical stress increased by 20 % after 0.5 dpa, and by 58 % after 1 dpa, with saturation of hardening occurring by 0.7 dpa. Post-compression characterization using transmission electron microscopy showed extensive formation of nanometer size voids in a matrix dominated by tangled dislocations. No twinning was observed. The experimental observations are in good agreement with molecular dynamics simulation of pillar compression of chromium, showing dislocation gliding along 〈111〉/{110} and 〈111〉/{112}. The continued stability of chromium for LWR application requires extension of the exposure level from 1 dpa to ∼15 dpa expected for typical fuel pin exposure.
| Original language | English |
|---|---|
| Article number | 155299 |
| Journal | Journal of Nuclear Materials |
| Volume | 600 |
| DOIs | |
| State | Published - Nov 2024 |
| Externally published | Yes |
Funding
M.P. acknowledges the support from DOE NEUP fellowship program. A.G acknowledges support from LANL-TAMU Triad program. L.S. acknowledge the accelerator beam time support from NSUF RTE project 1799. M.P. acknowledges the support from the U.S. Department of Energy NEUP fellowship program. A.G acknowledges support from LANL-TAMU Triad program. This work was supported by the U.S. Department of Energy, Office of Nuclear Energy under DOE Idaho Operations Office Contract DE-AC07-05ID14517 as part of Nuclear Science User Facilities award #1799.
Keywords
- Chromium
- Cr coating
- Ion irradiation
- Micro-pillar compression
- Molecular dynamics simulation
- Proton irradiation
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