DOE OSTI · 3388795
Experimental investigation of a closed vapour box module for a divertor-like configuration in Magnum-PSI
Abstract
Efficient management of extreme heat fluxes in the divertor region to extend the lifetime of the components remains a critical challenge for the realization of nuclear fusion-based power plants. Among the alternative concepts explored for the divertor region, the use of liquid metals, particularly lithium, is of interest due its ability to dissipate the incoming plasma heat flux through the vapour shielding effect (VS). In this work, we experimentally investigated a ‘closed’ configuration of a dedicated Vapour Box Module (VBM) in the linear plasma device Magnum-PSI. The goal of the experiments is to simulate the vapour box divertor environment conditions and assess its performance in terms of power mitigation and redistribution and lithium confinement. Initial testing without Li demonstrated the efficacy of a closed VBM structure in inducing detachment via neutral gas accumulation. Apertures which enabled non-condensing gas to be effectively pumped while ensuring lithium condensed on the inner surfaces were therefore added. With a lithium capillary porous structure target used, lithium is directly vaporized by the plasma, forming a dense lithium vapour cloud that interacts with the incoming plasma. This resulted in a significant reduction of the target temperature of at least 48%, together with a temperature locking effect, a phenomenon typically observed in the VS regime. Lithium vapour confinement within the VBM was strongly correlated with the wall temperature. Relatively cold walls promoted Li re-condensation and therefore improved Li confinement, although with the expected trade-off of increased hydrogenic retention on lithium-wetted surfaces. As the wall temperature increased, the confinement efficiency decreased, consistent with reduced Li re-condensation and thermally activated Li–H chemistry and remobilization at the walls. Diagnostic measurements through embedded thermocouples and calorimetry revealed that lithium vaporization and re-condensation processes also playedsignificant roles in plasma power dissipation. The results advance the case for a closed divertor chamber with direct lithium evaporation from the strike-points as a viable method to manage divertor heat fluxes in future fusion reactors.
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Romano, Fabio [Dutch Institute for Fundamental Energy Research (DIFFER), Eindhoven (Netherlands); Eindhoven University of Technology (Netherlands)] (ORCID:0000000202011657), Tanke, Victor F. B. [Dutch Institute for Fundamental Energy Research (DIFFER), Eindhoven (Netherlands); Eindhoven University of Technology (Netherlands)], Schwartz, Jacob A. [Princeton Plasma Physics Laboratory (PPPL), Princeton, NJ (United States)], Goldston, Robert James [Princeton Plasma Physics Laboratory (PPPL), Princeton, NJ (United States)] (ORCID:0000000203685514), Brons, Serge [Dutch Institute for Fundamental Energy Research (DIFFER), Eindhoven (Netherlands)], Morgan, T. W. [Dutch Institute for Fundamental Energy Research (DIFFER), Eindhoven (Netherlands); Eindhoven University of Technology (Netherlands)] (ORCID:000000025066015X). 2026-09-02. Experimental investigation of a closed vapour box module for a divertor-like configuration in Magnum-PSI. https://doi.org/10.1088/1741-4326/ae8fe6
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