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Perspectives on multiscale modelling and experiments to accelerate materials development for fusion

  • M. R. Gilbert
  • , K. Arakawa
  • , Z. Bergstrom
  • , M. J. Caturla
  • , S. L. Dudarev
  • , F. Gao
  • , A. M. Goryaeva
  • , S. Y. Hu
  • , X. Hu
  • , R. J. Kurtz
  • , A. Litnovsky
  • , J. Marian
  • , M. C. Marinica
  • , E. Martinez
  • , E. A. Marquis
  • , D. R. Mason
  • , B. N. Nguyen
  • , P. Olsson
  • , Y. Osetskiy
  • , D. Senor
  • W. Setyawan, M. P. Short, T. Suzudo, J. R. Trelewicz, T. Tsuru, G. S. Was, B. D. Wirth, L. Yang, Y. Zhang, S. J. Zinkle
  • United Kingdom Atomic Energy Authority
  • Shimane University
  • University of Tennessee
  • University of Alicante
  • University of Michigan, Ann Arbor
  • Université Paris-Saclay
  • Pacific Northwest National Laboratory
  • Oak Ridge National Laboratory
  • Jülich Research Centre
  • Moscow Engineering Physics Institute
  • University of California at Los Angeles
  • Clemson University
  • KTH Royal Institute of Technology
  • Massachusetts Institute of Technology
  • Japan Atomic Energy Agency

Research output: Contribution to journalReview articlepeer-review

83 Scopus citations

Abstract

Prediction of material performance in fusion reactor environments relies on computational modelling, and will continue to do so until the first generation of fusion power plants come on line and allow long-term behaviour to be observed. In the meantime, the modelling is supported by experiments that attempt to replicate some aspects of the eventual operational conditions. In 2019, a group of leading experts met under the umbrella of the IEA to discuss the current position and ongoing challenges in modelling of fusion materials and how advanced experimental characterisation is aiding model improvement. This review draws from the discussions held during that workshop. Topics covering modelling of irradiation-induced defect production and fundamental properties, gas behaviour, clustering and segregation, defect evolution and interactions are discussed, as well as new and novel multiscale simulation approaches, and the latest efforts to link modelling to experiments through advanced observation and characterisation techniques.

Original languageEnglish
Article number153113
JournalJournal of Nuclear Materials
Volume554
DOIs
StatePublished - Oct 2021

Keywords

  • Defect evolution
  • Experimental characterisation
  • Fusion materials
  • Hydrogen and helium
  • Multiscale modelling
  • Radiation damage

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