A preliminary conceptual design study for Korean fusion DEMO reactor

  • Keeman Kim
  • , Hyoung Chan Kim
  • , Sangjun Oh
  • , Young Seok Lee
  • , Jun Ho Yeom
  • , Kihak Im
  • , Gyung Su Lee
  • , George Neilson
  • , Charles Kessel
  • , Thomas Brown
  • , Peter Titus

Research output: Contribution to journalArticlepeer-review

56 Scopus citations

Abstract

As the ITER is being constructed, there is a growing anticipation for an earlier realization of fusion energy, so called fast-track approach. Korean strategy for fusion energy can be regarded as a fast-track approach and one special concept discussed in this paper is a two-stage development plan. At first, a steady-state Korean DEMO Reactor (K-DEMO) is designed not only to demonstrate a net electricity generation and a self-sustained tritium cycle, but also to be used as a component test facility. Then, at its second stage, a major upgrade is carried out by replacing in-vessel components in order to show a net electric generation on the order of 300 MWe and the competitiveness in cost of electricity (COE). The major radius is designed to be just below 6.5 m, considering practical engineering feasibilities. By using high performance Nb3Sn-based superconducting cable currently available, high magnetic field at the plasma center above 8 T can be achieved. A design concept for TF magnets and radial builds for the K-DEMO considering a vertical maintenance scheme, are presented together with preliminary design parameters.

Original languageEnglish (US)
Pages (from-to)488-491
Number of pages4
JournalFusion Engineering and Design
Volume88
Issue number6-8
DOIs
StatePublished - 2013

All Science Journal Classification (ASJC) codes

  • Civil and Structural Engineering
  • Nuclear Energy and Engineering
  • General Materials Science
  • Mechanical Engineering

Keywords

  • 16-T NbSn TF magnets
  • DEMO
  • Reactor design
  • Two-stage development plan

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