Runaway electron dynamics in ITER disruptions with shattered pellet injections
Journal article, 2024

This study systematically explores the parameter space of disruption mitigation through shattered pellet injection in ITER with a focus on runaway electron (RE) dynamics, using the disruption modeling tool Dream. The physics fidelity is considerably increased compared to previous studies, by e.g. using realistic magnetic geometry, resistive wall configuration, thermal quench onset criteria, as well as including additional effects, such as ion transport and enhanced RE transport during the thermal quench. The work aims to provide a fairly comprehensive coverage of experimentally feasible scenarios, considering plasmas representative of both non-activated and high-performance DT operation, different thermal quench onset criteria and transport levels, a wide range of hydrogen and neon quantities injected in one or two stages, and pellets with various characteristic shard sizes. Using a staggered injection scheme, with a pure hydrogen injection preceding a mixed hydrogen-neon injection, we find injection parameters leading to acceptable RE currents in all investigated discharges without activated runaway sources. Dividing the injection into two stages is found to significantly enhance the assimilation and minimize RE generation due to the hot-tail mechanism. However, while a staggered injection outperforms a single stage injection also in cases with radioactive RE sources, no cases with acceptable RE currents are found for a DT-plasma with a 15 MA plasma current.

ITER

disruption mitigation

shattered pellet injection

plasma simulation

runaway electron

Author

Oskar Vallhagen

Chalmers, Physics, Subatomic, High Energy and Plasma Physics

Lise Hanebring

Chalmers, Physics, Subatomic, High Energy and Plasma Physics

F. J. Artola

ITER Organization

M Lehnen

ITER Organization

E. Nardon

The French Alternative Energies and Atomic Energy Commission (CEA)

Tünde-Maria Fülöp

Chalmers, Physics, Subatomic, High Energy and Plasma Physics

M. Hoppe

Royal Institute of Technology (KTH)

Sarah Newton

United Kingdom Atomic Energy Authority

Istvan Pusztai

Chalmers, Physics, Subatomic, High Energy and Plasma Physics

Nuclear Fusion

00295515 (ISSN) 17414326 (eISSN)

Vol. 64 8 086033

Extreme Plasma Flares

Knut and Alice Wallenberg Foundation (2022.0087), 2023-07-01 -- 2028-06-30.

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

European Commission (EC) (101052200), 2021-01-01 -- 2025-12-31.

Runaway electrons in fusion plasmas

Swedish Research Council (VR) (2022-02862), 2023-01-01 -- 2026-12-31.

Subject Categories

Other Physics Topics

Fusion, Plasma and Space Physics

Condensed Matter Physics

DOI

10.1088/1741-4326/ad54d7

More information

Latest update

7/29/2024