June 2011

Conference Paper

Physics design requirements for the National Spherical Torus Experiment liquid lithium divertor

By:
Kugel, H.; Bell, M.; Berzak, L.; Brooks, A.; Ellis, R.; Gerhardt, S.P.; Kaita, R.; Kallman, J.; Majeski, R.; Mansfield, D.K.; Menard, J.; Stotler, D.; Zakharov, L.; Maingi, Rajesh ; Nygren, R. E.; Soukhanovskii, V. A.; Wakeland, P.
Journal Name:
Fusion Engineering and Design
Page Number:
1125-1129
Volume:
84
Issue Number:
7-11
Publication Date:
June 2011
Conference Name:
25th Symposium on Fusion Technology
Conference Location:
Rostock, Germany
View DOI Listing:
https://doi.org/10.1016/j.fusengdes.2008.11.102

Abstract

Recent National Spherical Tokamak Experiment (NSTX) high-power divertor experiments have shown significant and recurring benefits of solid lithium coatings on plasma facing components (PFCs) to the performance of divertor plasmas in both L- and H-mode confinement regimes heated by high-power neutral beams. The next step in this work is installation of a liquid lithium divertor (LLD) to achieve density control for inductionless current drive capability (e.g., about a 15–25% ne decrease from present highest non-inductionless fraction discharges which often evolve toward the density limit, ne/nGW 1), to enable ne scan capability (×2) in the H-mode, to test the ability to operate at significantly lower density (e.g., ne/nGW = 0.25), for future reactor designs based on the Spherical Tokamak, and eventually to investigate high heat-flux power handling (10 MW/m2) with long pulse discharges (>1.5 s). The first step (LLD-1) physics design encompasses the desired plasma requirements, the experimental capabilities and conditions, power handling, radial location, pumping capability, operating temperature, lithium filling, MHD forces, and diagnostics for control and characterization.