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Secondary divertor heat and particle flux
in support of ITER thermal load specifications Baseline Worst case Proposer: R. A. Pitts (IO), MIT contact: B. LaBombard Motivation ITER’s burning plasma equilibria are expected to run reasonably close to double null We know comparatively little about fluxes of heat and particles at the secondary divertor Thermal loads have been defined for power handling design of upper blanket modules based on extrapolations from relatively sparse data and some modeling The specified loads push some modules close to margins We seek to consolidate our physics basis drsep ~9 cm drsep ~4 cm
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Secondary divertor heat and particle flux
in support of ITER thermal load specifications e.g. DIII-D Proposer: R. A. Pitts (IO), MIT contact: B. LaBombard Before ELM Motivation We do know, qualitatively, that the secondary divertor fluxes can be rather intense …. e.g. JET DIII-D #138219 Secondary strike IR TV During ELM 68193, 17 s J. G. Watkins, IAEA 2010
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Secondary divertor heat and particle flux
in support of ITER thermal load specifications Proposer: R. A. Pitts (IO), MIT contact: B. LaBombard Experimental approach No ELM behaviour seen in SNL/SNU H-modes with strike points on lower, outer instrumented tiles concentrate on EDA perhaps a good proxy for mitigated ELM scenarios on ITER Use SNU and place secondary divertor strike on instrumented tiles. Look for: Steady state q||(r) and target ne(r), Te(r) at secondary strike as function of: Midplane drsep, density, input power, L-mode vs. H-mode lq in EDA versus ELM-free H-mode periods Study if possible particle flux turbulence at instrumented tiles (embedded LP) and compare with character found in far SOL (RCP). Also far SOL parallel flow Experiments must be performed with ion BxB drift upwards, towards primary X-point. Cryopumping not necessary (if not required for plasma ops). Probably up to two experimental sessions, including preparation.
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