Engineering PapersSearch

DOE OSTI · 2586619

Gyrokinetic PIC Study on RMP Affected Neoclassical Transport in Toroidal Plasmas

Abstract

In magnetically confined fusion plasmas, the breaking of ‘magnetic flux-surfaces’ due to resonant magnetic perturbations (RMPs) can generate magnetic islands and alter field topology to significantly impact plasma confinement and transport. Here, this work investigates the effect of magnetic islands on neoclassical radial energy transport within the core plasma of an analytic circular tokamak using the XGC-S global gyrokinetic particle-in-cell code. Findings from our simulations revealed substantial enhancements in electron neoclassical radial energy diffusivity in and around the islands, in addition to a newly observed two-peak structure at the O/X-points and outer island boundary in the electron diffusivity profile.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Li, Joseph X. [The Graduate Univ. for Advanced Studies ( SOKENDAI) (Japan)], Moritaka, Toseo [The Graduate Univ. for Advanced Studies ( SOKENDAI) (Japan); National Inst. for Fusion Science (Japan)], Kanno, Ryutaro [The Graduate Univ. for Advanced Studies ( SOKENDAI) (Japan); National Inst. for Fusion Science (Japan)], Kawamura, Gakushi [The Graduate Univ. for Advanced Studies ( SOKENDAI) (Japan); National Inst. for Fusion Science (Japan); National Institutes for Quantum Science and Technology (Japan)], Hager, Robert [Princeton Plasma Physics Laboratory (PPPL), Princeton, NJ (United States)], Chang, C.-S. [Princeton Plasma Physics Laboratory (PPPL), Princeton, NJ (United States)]. 2025-04-17. Gyrokinetic PIC Study on RMP Affected Neoclassical Transport in Toroidal Plasmas. https://doi.org/10.1585/pfr.20.1201019

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related reports

Effects of equilibrium pressure on plasma response to RMPs in a spherical tokamak

This study presents a comprehensive analysis of the equilibrium pressure on the plasma response to resonant magnetic perturbations (RMPs) in the spherical tokamak (ST) MAST-U, employing both single-fluid and MHD-kinetic hybrid models (implemented via the MARS-F/K codes). As a key finding, the study identifies two different pressure-driven eigenmodes, exhibiting Sturmian property, that affect the Troyon no-wall limits for the onset of the n = 1 and n = 2 ( n is the toroidal mode number) ideal external kink instabilities as well as the corresponding plasma response to the applied RMP. With increasing equilibrium pressure, the plasma response to RMPs is significantly enhanced in the ST plasma, particularly in the high-pressure regime where kinetic effects strongly stabilize the external kink instability. The Troyon no-wall limit divides the plasma response into two regions: well below the limit, the response amplitudes and trends (versus pressure) are similar between the fluid and kinetic models; as the equilibrium pressure approaches the Troyon limit, the kinetic model predicts significant amplification of the RMP field, up to 30 times for cases considered. A relatively weak dependence of the optimal coil phasing on the equilibrium pressure is computed in this ST plasma, similar to the trend obtained for the conventional aspect ratio devices. These findings underscore the importance of incorporating kinetic effects in accurate prediction of the plasma response to RMPs in high-pressure ST tokamak plasmas and provide a theoretical basis for optimizing RMP-based control of the edge-localized modes in future ST devices.

RMP