Published September 1995 | Version v1
Report Open

Lifetime evaluation of plasma-facing materials during a tokamak disruption

  • 1. Argonne National Lab., Argonne, IL (United States)
  • 2. Troitsk Inst. for Innovation, Troitsk (Russian Federation)

Description

Erosion losses of plasma-facing materials in a tokamak reactor during major disruptions, giant ELMS, and large power excursions are serious concerns that influence component survivability and overall lifetime. Two different mechanisms lead to material erosion during these events: surface vaporization and loss of the melt layer. Hydrodynamics and radiation transport in the rapidly developed vapor-cloud region above the exposed area are found to control and determine the net erosion thickness from surface vaporization. A comprehensive self-consistent kinetic model has been developed in which the time-dependent optical properties and the radiation field of the vapor cloud are calculated in order to correctly estimate the radiation flux at the divertor surface. The developed melt layer of metallic divertor materials will, however, be free to move and can be eroded away due to various forces. , Physical mechanisms that affect surface vaporization and cause melt layer erosion are integrated in a comprehensive model. It is found that for metallic components such as beryllium and tungsten, lifetime due to these abnormal events will be controlled and dominated by the evolution and hydrodynamics of the melt layer during the disruption. The dependence of divertor plate lifetime on various aspects of plasma/material interaction physics is discussed

Availability note (English)

MF available from INIS under the Report Number; Also available from OSTI as DE96007246; NTIS; US Govt. Printing Office Dep.

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Additional details

Publishing Information

Imprint Pagination
24 p.
Report number
ANL--TD/CP-86326

Conference

Title
international conference on fusion reactor materials.
Acronym
ICFRM-7
Dates
25-29 Sep 1995.
Place
Obninsk (Russian Federation).

Optional Information

Contract/Grant/Project number
Contract W-31109-ENG-38
Funding organization
USDOE, Washington, DC (United States).
Secondary number(s)
CONF-950961--11.