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  4. 3D non-linear MHD simulation of the MHD response and density increase as a result of shattered pellet injection
 
research article

3D non-linear MHD simulation of the MHD response and density increase as a result of shattered pellet injection

Hu, D.
•
Nardon, E.
•
Lehnen, M.
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December 1, 2018
Nuclear Fusion

The MHD response and the penetration of a deuterium shattered pellet into a JET plasma is investigated via the non-linear reduced MHD code JOREK with the neutral gas shielding (NGS) ablation model. The dominant MHD destabilizing mechanism by the injection is identified as the local helical cooling at each rational surface, as opposed to the global current profile contraction. Thus the injected fragments destabilize each rational surface as they pass through them. The injection penetration is found to be much better compared to MGI, with the convective transport caused by core MHD instabilities (e.g. 1/1 kink) contributing significantly to the core penetration. Moreover, the injection with realistic JET SPI system configurations is simulated in order to provide some insights into future operations, and the impact on the total assimilation and penetration depth of varying injection parameters such as the injection velocity or fineness of shattering is assessed. Further, the effect of changing the target equilibrium temperature or q profile on the assimilation and penetration is also investigated. Such analysis will form the basis of further investigation into a desirable configuration for the future SPI system in ITER.

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Type
research article
DOI
10.1088/1741-4326/aae614
Web of Science ID

WOS:000448076500001

Author(s)
Hu, D.
Nardon, E.
Lehnen, M.
Huijsmans, G. T. A.
van Vugt, D. C.
Abduallev, S.
Abhangi, M.
Abreu, P.
Afzal, M.
Aggarwal, K. M.
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Date Issued

2018-12-01

Publisher

IOP Publishing Ltd

Published in
Nuclear Fusion
Volume

58

Issue

12

Article Number

126025

Subjects

Physics, Fluids & Plasmas

•

Physics

•

tokamak

•

mhd instability

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shattered pellet injection

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jorek

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reduced mhd

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simulation

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disruption mitigation

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hyperresistivity

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ablation

•

plasma

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SPC  
Available on Infoscience
September 20, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/161337
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