Emergency draining of a HCLL TBM under the influence of a strong magnetic field: First estimates
Leo H. Buhler, C. Mistrangelo
Abstract
Leo H. Buhler, C. Mistrangelo
Abstract
A helium cooled lead lithium blanket has been proposed as a European liquid metal test blanket module for the experimental campaign in ITER. The current design consists of columns of rectangular boxes called breeder units, filled with the liquid metal PbLi. The blanket modules are placed in the region of the strong plasma-confining magnetic field which causes intense interactions of the flowing liquid-metal with induced currents and creates Lorentz forces opposing the flow. Under emergency conditions the liquid metal has to be removed from the blanket as fast as possible to minimize losses to the surrounding. In case of a leak the liquid metal has to flow out, driven only by its own weight. The present work analyses the draining by gravity under the conservative assumption that the magnetic field is not switched off. The geometric elements creating the major MHD resistance to the draining fluid are identified to support further improvements of the design.
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A helium cooled lead lithium blanket has been proposed as a European liquid metal test blanket module for the experimental campaign in ITER. The current design consists of columns of rectangular boxes called breeder units, filled with the liquid metal PbLi. The blanket modules are placed in the region of the strong plasma-confining magnetic field which causes intense interactions of the flowing liquid-metal with induced currents and creates Lorentz forces opposing the flow. Under emergency conditions the liquid metal has to be removed from the blanket as fast as possible to minimize losses to the surrounding. In case of a leak the liquid metal has to flow out, driven only by its own weight. The present work analyses the draining by gravity under the conservative assumption that the magnetic field is not switched off. The geometric elements creating the major MHD resistance to the draining fluid are identified to support further improvements of the design.
Key concepts: Blanket, Liquid metal, Magnetic field, Breeder (animal), Magnetohydrodynamics, Materials science, Lorentz force, Flow (mathematics)