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A Numerical Study of Cracks Appearance on Tungsten Surface After High Intense Pulsed Ion Beam Irradiation

  • Ijaz Shahid
  • , Jie Shen
  • , Xiao Yu
  • , Jie Zhang
  • , Haowen Zhong
  • , Xiaojun Cui
  • , Guoying Liang
  • , Wanying Huang
  • , Shijian Zhang
  • , Sha Yan
  • , Xiaofu Zhang
  • , Xiaoyun Le*
  • *Corresponding author for this work
  • Beihang University
  • Tomsk Polytechnic University
  • Peking University

Research output: Contribution to journalArticlepeer-review

Abstract

Due to the outstanding physical properties, Tungsten has been proposed for use in the divertor of future fusion devices. However, tungsten shall face strong particle bombardment from the plasma, which causes severe damage to the material. The purpose of this work is to build such an accurate analytical model which can predict the damages in target material like crack production and propagation after high intense pulsed ion beam irradiation. Hence, a two-dimensional finite element method is used to study the effect of high intense pulsed ion beam on tungsten surface numerically. To judge temperature and stress distribution in material, thermal conduction model is combined with non-linear fracture mechanics model and J-Integral parameter is used as a criterion to judge the crack propagation. Simulation results reveal that different crack heights and sizes can affect the results and there is a critical depth for crack propagation. The model gives good results to real experimental observations and has potential applications for different intense pulsed electron/plasma beams and different target materials as well.

Original languageEnglish
Pages (from-to)261-269
Number of pages9
JournalJournal of Fusion Energy
Volume37
Issue number5
DOIs
StatePublished - 1 Oct 2018

Keywords

  • Finite element method
  • Fracture toughness
  • High intense pulsed ion beam
  • J-integral
  • Tungsten

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