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Evaluation of Tellurium as a Fuel Additive in Neodymium-Containing U-Zr Metallic Fuel.
Jerred, Nathan D; Khanal, Rabi; Benson, Michael T; Perez, Emmanuel; King, James A; Dubey, Megha; Burns, Jatuporn; Charit, Indrajit; Choudhury, Samrat; Mariani, Robert D.
Afiliação
  • Jerred ND; Department of Chemical and Materials Engineering, University of Idaho, Moscow, Idaho, 83844, USA.
  • Khanal R; Materials and Fuels Complex Division, Idaho National Laboratory, Idaho Falls, Idaho, 83415, USA.
  • Benson MT; Department of Chemical and Materials Engineering, University of Idaho, Moscow, Idaho, 83844, USA.
  • Perez E; Materials and Fuels Complex Division, Idaho National Laboratory, Idaho Falls, Idaho, 83415, USA.
  • King JA; Materials and Fuels Complex Division, Idaho National Laboratory, Idaho Falls, Idaho, 83415, USA.
  • Dubey M; Materials and Fuels Complex Division, Idaho National Laboratory, Idaho Falls, Idaho, 83415, USA.
  • Burns J; Microscopy and Characterization Suite, Center for Advanced Energy Studies, Idaho Falls, Idaho, 83401, USA.
  • Charit I; Microscopy and Characterization Suite, Center for Advanced Energy Studies, Idaho Falls, Idaho, 83401, USA.
  • Choudhury S; Department of Chemical and Materials Engineering, University of Idaho, Moscow, Idaho, 83844, USA. icharit@uidaho.edu.
  • Mariani RD; Department of Chemical and Materials Engineering, University of Idaho, Moscow, Idaho, 83844, USA.
Sci Rep ; 9(1): 16043, 2019 Nov 05.
Article em En | MEDLINE | ID: mdl-31690752
ABSTRACT
Phase-stability in a U-Zr-Te-Nd multi-component metallic fuel for advanced nuclear reactors is systematically investigated by taking into account binary, ternary and quaternary interactions between elements involved. Historically, the onset of fuel-cladding chemical interactions (FCCI) greatly limits the burnup potential of U-Zr fuels primarily due to interactions between lanthanide fission products and cladding constituents. Tellurium (Te) is evaluated as a potential additive for U-Zr fuels to bind with lanthanide fission products, e.g. neodymium (Nd), negating or mitigating the FCCI effect. Potential fresh fuel alloy compositions with the Te additive, U-Zr-Te, are characterized. Te is found to completely bind with Zr within the U-Zr matrix. Alloys simulating the formation of the lanthanide element Nd within U-Zr-Te are also evaluated, where the Te-Nd binary interaction dominates and NdTe is found to form as a high temperature stable compound. The experimental observations agree well with the trends obtained from density functional theory calculations. According to the calculated enthalpy of mixing, Zr-Te compound formation is favored in the U-Zr-Te alloy whereas NdTe compound formation is favored in the U-Zr-Te-Nd alloy. Further, the calculated charge density distribution and density of states provide sound understanding of the mutual chemical interactions between elements and phase-stability within the multi-component fuel.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Sci Rep Ano de publicação: 2019 Tipo de documento: Article País de afiliação: Estados Unidos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Sci Rep Ano de publicação: 2019 Tipo de documento: Article País de afiliação: Estados Unidos