Tungsten-Steel Functionally Graded Coatings for Nuclear Fusion Applications Manufactured by Cold Gas Spraying
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Published:2022-12-02
Issue:2-3
Volume:32
Page:375-387
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ISSN:1059-9630
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Container-title:Journal of Thermal Spray Technology
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language:en
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Short-container-title:J Therm Spray Tech
Author:
Mauer GeorgORCID, Rauwald Karl-Heinz, Sohn Yoo Jung
Abstract
AbstractIn nuclear fusion reactors, the first wall is the name given to the surface which is in direct contact with the plasma. A part of it is the divertor which is a device that removes fusion products from the plasma and impurities that have entered into it from the vessel lining. It is covered with water cooled tiles which have to withstand high temperatures and high heat fluxes. Moreover, resistance to neutron bombardment, low tritium absorption and low hydrogen permeation are additional demands. One materials concept under research is the application of a Reduced Activation Ferritic Martensitic Steel (RAFM) as a structural material with a tungsten protective coating. Since there is a considerable thermal mismatch between, a functional-graded materials concept was proposed.As the formation of undesired intermetallic Fe-W phases as well as oxidation should be avoided, cold gas spraying was chosen as manufacturing process. Two powder blends of EUROFER97 RAFM steel and a fine tungsten powder cut on the one hand and a coarser one on the other hand were tested in different ratios. The coatings were characterized with respect to their porosity and surface structure. Furthermore, the deposition efficiencies for steel and tungsten were determined each. It turned out that the deposition process is a complex mixed situation of bonding and erosion mechanisms as the deposition windows of these very different materials obviously diverge. Thus, a lower working gas temperature and pressure was advantageous in some cases. Unexpectedly, the coarser tungsten powder in general enabled to achieve better results.
Funder
Forschungszentrum Jülich GmbH
Publisher
Springer Science and Business Media LLC
Subject
Materials Chemistry,Surfaces, Coatings and Films,Condensed Matter Physics
Reference22 articles.
1. M. Claessens, ITER: The Giant Fusion Reactor: Bringing a Sun to Earth, 1st ed., Copernicus, 2020 2. D.J. Campbell, T. Akiyama, R. Barnsley, M. Bassan, L.R. Baylor, L. Bertalot, F. Escourbiac et al., Innovations in Technology and Science R&D for ITER, J. Fusion Energy, 2019, 38(1), p 11-71. 3. M. Merola, F. Escourbiac, A.R. Raffray, P. Chappuis, T. Hirai and S. Gicquel, Engineering challenges and development of the ITER Blanket System and Divertor, Fusion Eng. Des., 2015, 96–97, p 34-41. 4. C. Linsmeier, M. Rieth, J. Aktaa, T. Chikada, A. Hoffmann, J. Hoffmann, A. Houben, H. Kurishita, X. Jin, M. Li, A. Litnovsky, S. Matsuo, A. von Müller, V. Nikolic, T. Palacios, R. Pippan, D. Qu, J. Reiser, J. Riesch, T. Shikama, R. Stieglitz, T. Weber, S. Wurster, J.H. You and Z. Zhou, Development of advanced high heat flux and plasma-facing materials, Nucl. Fusion, 2017, 57(9), p 092009. 5. K. Mergia and N. Boukos, Structural, thermal, electrical and magnetic properties of Eurofer 97 steel, J. Nucl. Mater., 2008, 373(1), p 1-8.
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