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Microstructure and hardness evolution of nanochannel W films irradiated by helium at high temperature

  • Wenjing Qin
  • , Yongqiang Wang
  • , Ming Tang
  • , Feng Ren
  • , Qiang Fu
  • , Guangxu Cai
  • , Lan Dong
  • , Lulu Hu
  • , Guo Wei
  • , Changzhong Jiang

Research output: Contribution to journalArticlepeer-review

50 Scopus citations

Abstract

Plasma facing materials (PFMs) face one of the most serious challenges in fusion reactors, including unprecedented harsh environment such as 14.1 MeV neutron and transmutation gas irradiation at high temperature. Tungsten (W) is considered to be one of the most promising PFM, however, virtually insolubility of helium (He) in W causes new material issues such as He bubbles and W “fuzz” microstructure. In our previous studies, we presented a new strategy using nanochannel structure designed in the W film to increase the releasing of He atoms and thus to minimize the He nucleation and “fuzz” formation behavior. In this work, we report the further study on the diffusion of He atoms in the nanochannel W films irradiated at a high temperature of 600 °C. More specifically, the temperature influences on the formation and growth of He bubbles, the lattice swelling, and the mechanical properties of the nanochannel W films were investigated. Compared with the bulk W, the nanochannel W films possessed smaller bubble size and lower bubble areal density, indicating that noticeable amounts of He atoms have been released out along the nanochannels during the high temperature irradiations. Thus, with lower He concentration in the nanochannel W films, the formation of the bubble superlattice is delayed, which suppresses the lattice swelling and reduces hardening. These aspects indicate the nanochannel W films have better radiation resistance even at high temperature irradiations.

Original languageEnglish
Pages (from-to)132-140
Number of pages9
JournalJournal of Nuclear Materials
Volume502
DOIs
StatePublished - Apr 15 2018

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