Mitigation of plasma-material interactions via passive Li efflux from the surface of a flowing liquid lithium limiter in EAST

  • G. Z. Zuo
  • , J. S. Hu
  • , R. Maingi
  • , J. Ren
  • , Z. Sun
  • , Q. X. Yang
  • , Z. X. Chen
  • , H. Xu
  • , K. Tritz
  • , L. E. Zakharov
  • , C. Gentile
  • , X. C. Meng
  • , M. Huang
  • , W. Xu
  • , Y. Chen
  • , L. Wang
  • , N. Yan
  • , S. T. Mao
  • , Z. D. Yang
  • , J. G. Li

Research output: Contribution to journalArticlepeer-review

55 Scopus citations

Abstract

A new flowing liquid Li limiter (FLiLi) based on the concept of a thin flowing film has been successfully designed and tested in the EAST device in 2014. A bright Li radiative mantle at the plasma edge was observed during discharges using FLiLi, resulting from passive Li injection and transport in the scrape-off layer (SOL) plasma. Li particle efflux from the FLiLi surface into the plasma was estimated at >5 × 1020 atom s-1, due to surface evaporation and sputtering, and accompanied with a few small Li droplets ∼1 mm diameter that were ejected from FLiLi. The Li efflux from FLiLi was ionized by the SOL plasma and formed a Li radiation band that originated from the FLiLi surface, and then spread toroidally by SOL plasma flow. The Li radiative mantle appeared to partly isolate the plasma from the wall, reducing impurity release from the wall materials, and possibly leading to a modest improvement in confinement. In addition, strong Li radiation reduced the particle and heat fluxes impacting onto the divertor plate, with certain similarities to heat flux reduction and detachment onset via low-Z impurity injection.

Original languageEnglish (US)
Article number046017
JournalNuclear Fusion
Volume57
Issue number4
DOIs
StatePublished - Mar 2 2017

All Science Journal Classification (ASJC) codes

  • Nuclear and High Energy Physics
  • Condensed Matter Physics

Keywords

  • EAST
  • flowing liquid Li
  • Li radiative mantle
  • plasma-material interactions

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