An in situ runaway electron diagnostic for DIII-D
G A Wurden1, J A Oertel1, T E Evans2
1Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.
Abstract:
We are designing a new diagnostic based on laser inverse Compton scattering to study the dynamics of runaway electron formation during killer-pellet triggered disruptions in DIII-D, and their subsequent loss. We can improve the expected S/N ratio by using a high-intensity short-pulse laser combined with gated x-ray imagers. With 80 ps sampling, time-of-flight spatial resolution within the laser chord can be obtained. We will measure the time-resolved spatial profile and energy distribution of the runaway electrons while they are in the core of the tokamak plasma.
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