Shattered pellet injection (SPI) is the technique selected for disruption mitigation in ITER, and is being tested in several tokamaks including JET [1]. In this work, we present results of nonlinear 3D MHD simulations of mixed Neon-Deuterium SPI into H-mode JET plasmas, and their validation against experiments. We consider a medium size pellet with 8.1 mm diameter as shot from barrel B in JET, and we focus on the pre-thermal quench and thermal quench (TQ) phases. Simulations are performed with the 3D MHD code JOREK [2] using parameters as close as possible to experimental conditions. In particular, we perform free boundary simulations with realistic JET vessel, separate electron and ion temperatures, realistic edge plasma resistivity, and distributions for the sizes and velocities of fragments in the SPI plume consistent with laboratory measurements [3]. A scan in the pellet mixture ratio ranging from 5% Ne-95% D2 to pure Ne is carried out, as done in the series of target experimental pulses [4]. It is found that all the mixture ratios can produce a TQ, triggered by the MHD activity (and the related global magnetic field stochastization) induced by radiation cooling from injected impurities. Good quantitative agreement is found between JOREK simulations and JET pulses, regarding several key aspects such as bolometry radiation patterns, the increase of radiation power and line integrated density, and the decrease of plasma thermal energy and core temperature during the TQ. This demonstrates the capability of JOREK as a fundamental interpretative tool of these experimental observations. In particular, the code can be used to provide insights about the toroidal asymmetry of radiation, which cannot be measured properly at JET due to the lack of diagnostic capability. Present simulations predict a level of radiation asymmetry at the TQ consistent with experimental estimates reported in [1].

Validation of 3D MHD simulations of mixed Ne-D2 shattered pellet injection against H-mode experiments in JET

Bonfiglio D;
2022

Abstract

Shattered pellet injection (SPI) is the technique selected for disruption mitigation in ITER, and is being tested in several tokamaks including JET [1]. In this work, we present results of nonlinear 3D MHD simulations of mixed Neon-Deuterium SPI into H-mode JET plasmas, and their validation against experiments. We consider a medium size pellet with 8.1 mm diameter as shot from barrel B in JET, and we focus on the pre-thermal quench and thermal quench (TQ) phases. Simulations are performed with the 3D MHD code JOREK [2] using parameters as close as possible to experimental conditions. In particular, we perform free boundary simulations with realistic JET vessel, separate electron and ion temperatures, realistic edge plasma resistivity, and distributions for the sizes and velocities of fragments in the SPI plume consistent with laboratory measurements [3]. A scan in the pellet mixture ratio ranging from 5% Ne-95% D2 to pure Ne is carried out, as done in the series of target experimental pulses [4]. It is found that all the mixture ratios can produce a TQ, triggered by the MHD activity (and the related global magnetic field stochastization) induced by radiation cooling from injected impurities. Good quantitative agreement is found between JOREK simulations and JET pulses, regarding several key aspects such as bolometry radiation patterns, the increase of radiation power and line integrated density, and the decrease of plasma thermal energy and core temperature during the TQ. This demonstrates the capability of JOREK as a fundamental interpretative tool of these experimental observations. In particular, the code can be used to provide insights about the toroidal asymmetry of radiation, which cannot be measured properly at JET due to the lack of diagnostic capability. Present simulations predict a level of radiation asymmetry at the TQ consistent with experimental estimates reported in [1].
2022
Istituto per la Scienza e Tecnologia dei Plasmi - ISTP
Inglese
48th EPS Conference on Plasma Physics
1
4
4
https://indico.fusenet.eu/event/28/contributions/245/attachments/259/967/epspaper_bonfiglio.pdf
27 June - 1 July 2022
Online, Amsterdam timezone
3D MHD
Shattered pellet injection
SPI
H-mode experiments
JET
This work has been carried out within the framework of the EUROfusion Consortium, funded by the European Union via the Euratom Research and Training Programme (Grant Agreement No 101052200 - EUROfusion).
1
none
Bonfiglio D.; Hu D.; Kong M.; Nardon E.; Artola F.J.; Boboc A.; Carvalho P.; Hoelzl M.; Lee S.J.; Sheikh U.; Silburn S.; SteinLubrano B.; Sweeney R.; ...espandi
273
info:eu-repo/semantics/conferenceObject
04 Contributo in convegno::04.01 Contributo in Atti di convegno
   Implementation of activities described in the Roadmap to Fusion during Horizon 2020 through a Joint programme of the members of the EUROfusion consortium
   EUROfusion
   H2020
   633053
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/412814
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