Particle behavior close to the lower wall of a tokamak type geometry during a loss of vacuum accident
Author:
Publisher
Elsevier BV
Subject
Mechanical Engineering,General Materials Science,Nuclear Energy and Engineering,Civil and Structural Engineering
Reference35 articles.
1. CFD modelling of the wall friction velocity field in the ITER tokamak resulting from airflow during a loss of vacuum accident – consequences for particle resuspension;Gélain;Fusion Eng. Des.,2015
2. 3D simulation of a loss of vacuum accident (LOVA) in ITER (International Thermonuclear Experimental Reactor): evaluation of static pressure, Mach number, and friction velocity;Ciparisse;Energies,2018
3. A scaling law of pressurisation time in the case of loss of vacuum accidents (LOVAs): theoretical and experimental analysis;Rossi;Fusion Eng. Des.,2019
4. Experimental measurements of pressure, temperature and dust velocities in case of LOVA: Comparisons with a multiphase numerical model;Rossi;Fusion Eng. Des.,2019
5. Numerical analysis of loss of vacuum accident (LOVA) and preliminary discussion about dust resuspension for CFETR;Xu;Fusion Eng. Des.,2019
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1. Numerical analysis of supersonic jet flow and dust transport induced by air ingress in a fusion reactor;Nuclear Science and Techniques;2021-07
2. Diffusion bonding effects on the adhesion of tungsten dust on tungsten surfaces;Nuclear Materials and Energy;2020-08
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