Experimental Progress in the Development of a Metal Foil Pump for DEMO

Author:

Kathage Yannick1,Vazquez Cortes Alejandro1ORCID,Merli Stefan2,Day Christian1,Giegerich Thomas1,Hanke Stefan1,Igitkhanov Juri1,Schulz Andreas2,Walker Matthias2

Affiliation:

1. Institute of Technical Physics (ITEP), Karlsruhe Institute of Technology (KIT), 76131 Karlsruhe, Germany

2. Institute of Interfacial Process Engineering and Plasma Technology (IGVP), University of Stuttgart, 70174 Stuttgart, Germany

Abstract

Experimental findings to contribute to the preliminary design of a metal foil pump for fuel separation in the Direct Internal Recycling loop of the DEMO fusion device are presented. In parametric studies on a small-scale superpermeation experiment with a microwave plasma source and two different metal foil materials, niobium Nb and vanadium V, a substantial increase in permeation with plasma power and with a decrease in pressure was observed. To ease operation in the typical fusion environment, in-situ heating procedures were developed to recover from impurity contamination. The temperature independence of plasma-driven permeation from 600 to 900 °C metal foil temperature was demonstrated. No proof of an isotopic effect for plasma-driven permeation of protium and deuterium could be found. The highest repeatable permeation flux achieved was 6.7 Pa∙m3/(m2∙s) or ~5.5 × 10−3 mol H/(m2∙s). The found compression ratios do safely allow the operation of the metal foil pump using ejector pumps as backing stages for the permeate. In a dedicated experimental setup, the operation of the plasma source in a strong magnetic field was tested. Parametric studies of pressure, power input, magnetic flux density, field gradient and field angle are presented.

Funder

European Union

Publisher

MDPI AG

Subject

General Earth and Planetary Sciences,General Engineering,General Environmental Science

Reference22 articles.

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2. Physics and technology considerations for the deuterium-tritium fuel cycle and conditions for tritium fuel self sufficiency;Abdou;Nucl. Fusion,2021

3. The KALPUREX-process—A new vacuum pumping process for exhaust gases in fusion power plants;Giegerich;Fusion Eng. Des.,2014

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5. Physico-chemical origin of superpermeability—Large-scale effects of surface chemistry on “hot” hydrogen permeation and absorption in metals;Livshits;J. Nucl. Mater.,1990

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