Control of ion gyroscale fluctuations via electrostatic biasing and sheared e × B flow in the C-2 field reversed configuration

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Abstract

Control of radial particle and thermal transport is instrumental for achieving and sustaining well-confined high-β plasma in a Field-Reversed Configuration (FRC). Radial profiles of low frequency ion gyro-scale density fluctuations (0.5≤kρs≤40), consistent with drift-or drift-interchange modes, have been measured in the scrape-off layer (SOL) and core of the C-2 Field-Reversed Configuration (FRC), together with the toroidal E×B velocity. It is shown here that axial electrostatic SOL biasing controls and reduces gyro-scale density fluctuations, resulting in very low FRC core fluctuation levels. When the radial E×B flow shearing rate decreases below the turbulence decorrelation rate, fluctuation levels increase substantially, concomitantly with onset of the n=2 instability and rapid loss of diamagnetism. Low turbulence levels, improved energy/particle confinement and substantially increased FRC life times are achieved when E×B shear near the separatrix is maintained via axial SOL biasing using an annular washer gun.

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Schmitz, L., Ruskov, E., Deng, B. H., Binderbauer, M., Tajima, T., Gota, H., & Tuszewski, M. (2016). Control of ion gyroscale fluctuations via electrostatic biasing and sheared e × B flow in the C-2 field reversed configuration. In AIP Conference Proceedings (Vol. 1721). American Institute of Physics Inc. https://doi.org/10.1063/1.4944018

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