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Fast low-temperature irradiation creep driven by athermal defect dynamics

Published 24 Jan 2024 in cond-mat.mtrl-sci and cond-mat.mes-hall | (2401.13385v1)

Abstract: The occurrence of high stress concentrations in reactor components is a still intractable phenomenon encountered in fusion reactor design. We observe and quantitatively model a non-linear high-dose radiation mediated microstructure evolution effect that facilitates fast stress relaxation in the most challenging low-temperature limit. In situ observations of a tensioned tungsten wire exposed to a high-energy ion beam show that internal stress of up to 2 GPa relaxes within minutes, with the extent and time-scale of relaxation accurately predicted by a parameter-free multiscale model informed by atomistic simulations. As opposed to conventional notions of radiation creep, the effect arises from the self-organisation of nanoscale crystal defects, athermally coalescing into extended polarized dislocation networks that compensate and alleviate the external stress.

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References (18)
  1. J. Knaster, A. Moeslang, and T. Muroga, Materials research for fusion, Nature Physics 12, 424 (2016).
  2. M. Griffiths, Strain Localisation and Fracture of Nuclear Reactor Core Materials, Journal of Nuclear Engineering 4, 338 (2023).
  3. E. Gilbert and J. Bates, Dependence of irradiation creep on temperature and atom displacements in 20% cold worked type 316 stainless steel, in Measurement of Irradiation-enhanced Creep in Nuclear Materials (Elsevier, 1977) pp. 204–209.
  4. G. S. Was, Irradiation creep and growth, Fundamentals of Radiation Materials Science: Metals and Alloys , 735 (2017).
  5. M. Grossbeck and L. Mansur, Low-temperature irradiation creep of fusion reactor structural materials, Journal of Nuclear Materials 179, 130 (1991).
  6. M. J. Norgett, M. T. Robinson, and I. M. Torrens, A proposed method of calculating displacement dose rates, Nuclear Engineering and Design 33, 50 (1975).
  7. J. F. Ziegler, SRIM-2003, Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 219, 1027 (2004).
  8. A. E. Sand, S. L. Dudarev, and K. Nordlund, High-energy collision cascades in tungsten: Dislocation loops structure and clustering scaling laws, EPL (Europhysics Letters) 103, 46003 (2013).
  9. L. Proville and A. Choudhury, Unravelling the jerky glide of dislocations in body-centred cubic crystals, Nature Materials , 1 (2024).
  10. P. M. Anderson, J. P. Hirth, and J. Lothe, Theory of Dislocations, 3rd ed. (Cambridge University Press, 2017).
  11. A. Stukowski, Visualization and analysis of atomistic simulation data with OVITO–the open visualization tool, Modelling and Simulation in Materials Science and Engineering 18, 015012 (2009).
  12. W. Wolfer, T. Okita, and D. Barnett, Motion and rotation of small glissile dislocation loops in stress fields, Physical Review Letters 92, 085507 (2004).
  13. P. M. Derlet and S. L. Dudarev, Microscopic structure of a heavily irradiated material, Physical Review Materials 4, 023605 (2020).
  14. D. R. Mason, D. Nguyen-Manh, and C. S. Becquart, An empirical potential for simulating vacancy clusters in tungsten, Journal of Physics: Condensed Matter 29, 505501 (2017).
  15. P.-W. Ma and S. L. Dudarev, Effect of stress on vacancy formation and migration in body-centered-cubic metals, Phys. Rev. Materials 3, 063601 (2019).
  16. J. Ponsoye, Irradiation de tungstene sous contrainte uniaxiale a basse temperature, Radiation Effects 8, 13 (1971).
  17. S. Plimpton, Fast parallel algorithms for short-range molecular dynamics, Journal of Computational Physics 117, 1 (1995).
  18. www.csd3.cam.ac.uk.
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