Mitigation of upward and downward vertical displacement event heat loads with upper or lower massive gas injection in DIII-D

E. M. Hollmann, N. Commaux, N. W. Eidietis, C. J. Lasnier, R. A. Moyer, P. B. Parks, D. Shiraki

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

Intentionally triggered upward and downward vertical displacement events (VDEs) leading to disruptions were pre-emptively mitigated with neon massive gas injection (MGI) coming from either above or below the plasma. Global indicators of disruption mitigation effectiveness (conducted heat loads, radiated power, and vessel motion) do not show a clear improvement when mitigating with the gas jet located closer to the VDE impact area. A clear trend of improved mitigation is observed for earlier MGI timing relative to the VDE impact time. The plasma edge magnetic perturbation is seen to lock to a preferential phase during the VDE thermal quench, but this phase is not clearly matched by preliminary attempts to fit to the conducted heat load phase. Clear indications of plasma infra-red (IR) emission are observed both before and during the disruptions. This IR emission can affect calculation of disruption heat loads; here, the time decay of post-disruption IR signals is used to correct for this effect.

Original languageEnglish
Article number102506
JournalPhysics of Plasmas
Volume22
Issue number10
DOIs
StatePublished - Oct 1 2015

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