Coupled kinetic-fluid simulations on sputtering and transport of intrinsic carbon impurity in HL-3
Artikel i vetenskaplig tidskrift, 2026

Carbon impurity sputtering and transport in the HL-3 tokamak are investigated using the time-dependent JOREK kinetic-fluid coupled framework with an updated sputtering model. Physical sputtering, chemical sputtering, and self-sputtering are treated simultaneously, with their yields evaluated dynamically from the evolving local plasma conditions. In the axisymmetric simulations, physical sputtering is localized near the strike point, whereas chemical sputtering extends over a broader target region. The sputtered carbon is subsequently transported along the divertor and scrape-off-layer flux tubes and exhibits a pronounced high-field-side/low-field-side asymmetry. During the simulated edge-localized-mode burst, the rapid increases in target temperature and deuterium ion flux strongly enhance and broaden physical sputtering, while chemical sputtering is suppressed near the strike point. Self-sputtering remains a secondary contribution under the conditions considered. These results demonstrate that the different sputtering channels respond differently to transient divertor conditions and should be treated self-consistently when modeling carbon source formation and transport in HL-3.

Coupled kinetic-fluid simulation

HL-3

Carbon impurity sputtering

JOREK

Författare

Z. Liang

Dalian University of Technology

Y. L. Liu

Dalian University of Technology

Y. Feng

Dalian University of Technology

S. Y. Dai

Dalian University of Technology

Matthias Hölzl

Max-Planck-Gesellschaft

Chalmers, Fysik, Subatomär, högenergi- och plasmafysik

A. Cathey

Max-Planck-Gesellschaft

D. Hu

Beihang University

S. Q. Korving

ITER Organization

Y.-C. Liang

Max-Planck-Gesellschaft

M. Szücs

Max-Planck-Gesellschaft

Y. Zhang

Southwestern Institute of Physics China

D. Z. Wang

Dalian University of Technology

the JOREK Team

ITER Organization

Southwestern Institute of Physics China

Dalian University of Technology

Beihang University

Max-Planck-Gesellschaft

Nuclear Materials and Energy

23521791 (eISSN)

Vol. 48 102206

Implementation of activities described in the Roadmap to Fusion during Horizon Europe through a joint programme of the members of the EUROfusion consortium

Europeiska kommissionen (EU) (101052200), 2021-01-01 -- 2025-12-31.

Ämneskategorier (SSIF 2025)

Annan fysik

Astronomi, astrofysik och kosmologi

DOI

10.1016/j.nme.2026.102206

Mer information

Senast uppdaterat

2026-08-31