4.7 Article

Interaction of Mn+1AXn phases with oxygen-poor, static and fast-flowing liquid lead-bismuth eutectic

Journal

JOURNAL OF NUCLEAR MATERIALS
Volume 520, Issue -, Pages 258-272

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.jnucmat.2019.04.010

Keywords

MAX phase; Lead-bismuth eutectic (LBE); Liquid metal corrosion; Erosion

Funding

  1. Agency for Innovation by Science and Technology (IWT), Flanders, Belgium [131081]
  2. European Atomic Energy Community's (Euratom) [604862]
  3. MYRRHA project, SCK.CEN, Belgium
  4. KU Leuven [GOA/15/012-SUMMA]
  5. Hercules Foundation [AKUL/1319]

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Select MAX phase-based ceramics were screened with respect to their potential susceptibility to environmentally-assisted degradation in an oxygen-poor liquid lead-bismuth eutectic (LBE) environment, both under static and fast-flowing exposure conditions. The majority of the MAX phases exposed to oxygen-poor (C-O <= 2.2 x 10(-10) mass%) static liquid LBE for at least 1000 h at 500 degrees C showed exceptional chemical compatibility with the heavy liquid metal, i.e., no evidence of LBE dissolution attack was observed, despite the absence of a continuous oxide scale on the surface of the exposed MAX phase ceramics. The local LBE interaction observed only with the Zr-rich MAX phases consisted in the partial substitution of Al by Pb/Bi in the MAX phase crystal structure and the in-situ formation of Pb/Bicontaining solid solutions. Moreover, the interaction of Zr-based MAX phases with static liquid LBE was accompanied by the dissolution of parasitic intermetallic phases, which facilitated the further LBE ingress into the ceramic bulk. The erosion resistance of select MAX phase ceramics was also assessed in oxygen-poor (C-O approximate to 5 x 10(-9) mass%) fast-flowing (v approximate to 8 m/s) liquid LBE for 1000 h at 500 degrees C. Despite the moderate LBE oxygen concentration, oxidation was the predominant corrosion mechanism, while no erosion damages were observed in the exposed MAX phase ceramics. The resistance of the MAX phase ceramics to both dissolution corrosion and erosion in contact with oxygen-poor static and fast-flowing liquid LBE, respectively, was compared to that of the 316L reference structural stainless steel. (C) 2019 Elsevier B.V. All rights reserved.

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