Turbulent transport regimes in the tokamak boundary and operational limits
M. Giacomin, P. Ricci

TL;DR
This paper uses advanced turbulence simulations to identify four distinct turbulent transport regimes in tokamak boundaries, linking them to operational limits like density and beta thresholds, and provides analytical scaling laws for these limits.
Contribution
It introduces a comprehensive electromagnetic phase space of edge turbulence and derives analytical scaling laws for operational limits based on simulation results.
Findings
Identified four turbulent transport regimes in tokamak edges.
Linked turbulence regimes to operational limits such as density and beta thresholds.
Provided analytical scaling laws for maximum edge density and crossing of operational limits.
Abstract
Two-fluid, three-dimensional, flux-driven, global, electromagnetic turbulence simulations carried out by using the GBS code are used to identify the main parameters controlling turbulent transport in the tokamak boundary and to delineate an electromagnetic phase space of edge turbulence. Four turbulent transport regimes are identified: (i) a regime of fully developed turbulence appearing at intermediate values of collisionality and , with turbulence driven by resistive ballooning modes, related to the L-mode operation of tokamaks, (ii) a regime of reduced turbulent transport at low collisionality and large heat source, with turbulence driven by drift-waves, related to a high-density H-mode regime, (iii) a regime of extremely large turbulent transport at high collisionality, which is associated with the crossing of the density limit, and (iv) a regime above the ideal ballooning…
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