Flux pumping and bifurcated relaxations of helical core in 3D magnetohydrodynamic modelling of ASDEX Upgrade plasmas
H. Zhang, M. Hoelzl, I. Krebs, A. Burckhart, A. Bock, S. Guenter, V. Igochine, K. Lackner, D. Bonfiglio, E. Fable, F. Stefanelli, R. Ramasamy, H. Zohm, JOREK TEAM, ASDEX UPGRADE TEAM

TL;DR
This paper uses advanced 3D MHD simulations to understand flux pumping in the AUG tokamak, revealing bifurcated plasma behaviors and the influence of dissipation and plasma beta on different states, aiding future operational control.
Contribution
It demonstrates the first quantitative reproduction of flux pumping profiles in AUG using nonlinear MHD simulations and explores plasma state bifurcations under varying parameters.
Findings
Successfully reproduces core current and safety factor profiles.
Identifies bifurcated plasma behaviors at different Hartmann numbers.
Analyzes the impact of dissipation and plasma beta on plasma states.
Abstract
Flux pumping was achieved in recent hybrid scenario experiments in the ASDEX Upgrade (AUG) tokamak, which is characterized by a sawtooth-free helical quiescent state and the anomalous radial redistribution of toroidal current density and poloidal magnetic flux. In this article, the self-regulation mechanism of the AUG core plasma during flux pumping is investigated at realistic parameters using the JOREK code based on the two-temperature, nonlinear, full magnetohydrodynamic (MHD) model. A key milestone in AUG flux pumping modelling is achieved by quantitatively reproducing the clamped current density and safety factor profiles in the plasma core, demonstrating the effectiveness of the dynamo effect in sustaining the flux pumping state. The dynamo term, that is of particular interest, is primarily generated by the pressure-gradient driven m/n = 1/1 quasi-interchange-like MHD instability.…
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Taxonomy
TopicsMagnetic confinement fusion research · Superconducting Materials and Applications · Fusion materials and technologies
