Simulation of Shattered Pellet Injections with Plasmoid Drifts in ASDEX Upgrade and ITER

Fuente: arXiv
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Main Authors: Vallhagen, O., Antonsson, L., Halldestam, P., Papp, G., Heinrich, P., Patel, A., Hoppe, M., Votta, L., Team, the ASDEX Upgrade, Team, the EUROfusion Tokamak Exploitation
Format: Preprint
Published: 2025
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author Vallhagen, O.
Antonsson, L.
Halldestam, P.
Papp, G.
Heinrich, P.
Patel, A.
Hoppe, M.
Votta, L.
Team, the ASDEX Upgrade
Team, the EUROfusion Tokamak Exploitation
author_facet Vallhagen, O.
Antonsson, L.
Halldestam, P.
Papp, G.
Heinrich, P.
Patel, A.
Hoppe, M.
Votta, L.
Team, the ASDEX Upgrade
Team, the EUROfusion Tokamak Exploitation
contents Pellet injection is an important means to fuel and control discharges and mitigate disruptions in reactor-scale fusion devices. To accurately assess the efficiency of these applications, it is necessary to account for the drift of the ablated material toward the low-field side. In this study, we have implemented a semi-analytical model for ablation cloud drifts in the numerical disruption modelling tool DREAM. We show that this model is capable of reproducing the density evolution in shattered pellet injection (SPI) experiments in ASDEX Upgrade, for model parameters within the expected range. The model is then used to investigate the prospects for disruption mitigation by staggered SPIs in 15 MA DT H-mode ITER scenarios. We find that the drifts may decrease the assimilation of pure deuterium SPIs by about an order of magnitude, which may be important to consider when designing the disruption mitigation scheme in ITER. The ITER scenarios studied here generally result in similar multi-MA runaway electron (RE) currents, regardless of the drift assumptions, but the effect of the drift is larger in situations with a fast and early thermal quench. The RE current may also be more strongly affected by the drift losses when accounting for RE losses caused by the vertical plasma motion.
format Preprint
id arxiv_https___arxiv_org_abs_2506_12957
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Simulation of Shattered Pellet Injections with Plasmoid Drifts in ASDEX Upgrade and ITER
Vallhagen, O.
Antonsson, L.
Halldestam, P.
Papp, G.
Heinrich, P.
Patel, A.
Hoppe, M.
Votta, L.
Team, the ASDEX Upgrade
Team, the EUROfusion Tokamak Exploitation
Plasma Physics
Pellet injection is an important means to fuel and control discharges and mitigate disruptions in reactor-scale fusion devices. To accurately assess the efficiency of these applications, it is necessary to account for the drift of the ablated material toward the low-field side. In this study, we have implemented a semi-analytical model for ablation cloud drifts in the numerical disruption modelling tool DREAM. We show that this model is capable of reproducing the density evolution in shattered pellet injection (SPI) experiments in ASDEX Upgrade, for model parameters within the expected range. The model is then used to investigate the prospects for disruption mitigation by staggered SPIs in 15 MA DT H-mode ITER scenarios. We find that the drifts may decrease the assimilation of pure deuterium SPIs by about an order of magnitude, which may be important to consider when designing the disruption mitigation scheme in ITER. The ITER scenarios studied here generally result in similar multi-MA runaway electron (RE) currents, regardless of the drift assumptions, but the effect of the drift is larger in situations with a fast and early thermal quench. The RE current may also be more strongly affected by the drift losses when accounting for RE losses caused by the vertical plasma motion.
title Simulation of Shattered Pellet Injections with Plasmoid Drifts in ASDEX Upgrade and ITER
topic Plasma Physics
url https://arxiv.org/abs/2506.12957