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Modelling of macros...
Modelling of macroscopic melt motion in fusion devices
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- Thorén, Emil (författare)
- KTH,Rymd- och plasmafysik
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- Ratynskaia, Svetlana V., Professor (preses)
- KTH,Rymd- och plasmafysik
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- Tolias, Panagiotis, Dr, 1984- (preses)
- KTH,Rymd- och plasmafysik
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- Matthews, Guy, Dr (opponent)
- Culham Science Centre, Abingdon, UK
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(creator_code:org_t)
- ISBN 9789178736393
- Stockholm, Sweden : KTH Royal Institute of Technology, 2020
- Engelska 83 s.
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Serie: TRITA-EECS-AVL ; 2020:44
- Relaterad länk:
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https://kth-se.zoom....
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https://kth.diva-por... (primary) (Raw object)
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Abstract
Ämnesord
Stäng
- Magnetic confinement fusion is one of the most well developed methods envisioned to achieve thermonuclear fusion energy in the future. A central obstacle that remains in the way of safe and sustainable reactor operation is the interaction that occurs between the plasma and vessel wall components. Lengthy or intense plasma exposures will lead to surface erosion or plasma pollution. Metal plasma-facing components can melt, in which case the liquid is subsequently displaced by various accelerating forces resulting to macroscopic surface deformation, which will ultimately decrease the functionality and lifetime of the armour. Experiments have been performed in numerous contemporary tokamaks in order to elucidate the various processes behind wall heating, metal melting, and surface deformation. Combined with numerical tools, these provide the framework for predictive studies and conclusions for the armour effectiveness in future tokamaks ITER and DEMO.This thesis is focused on one such numerical tool: MEMOS-U, a heat transfer and fluid motion code that was developed specifically to model macroscopic surface deformation in magnetic confinement devices. The code employs the shallow water approximation of the Navier-Stokes equations, which drastically reduces the computational cost and enables multi-timescale simulations over large exposed areas. A detailed overview of the theoretical framework and numerical implementation of the code is provided, followed by results from benchmarking activities with various melt experiments as well as predictive studies for ITER. Model limitations are also discussed.
Ämnesord
- NATURVETENSKAP -- Fysik -- Fusion, plasma och rymdfysik (hsv//swe)
- NATURAL SCIENCES -- Physical Sciences -- Fusion, Plasma and Space Physics (hsv//eng)
Nyckelord
- Electrical Engineering
- Elektro- och systemteknik
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