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Designing Nuclear Fuels with a Multi-Principal Element Alloying Approach

Published

Author(s)

G. Beausoleil, J. Zillinger, L. Hawkins, T. Yao, Abdullah Weiss, X. Pu, N. Jerred, D. Kaoumi

Abstract

Previous research has shown that multi-principal element alloys (MPEAs) using chromium, molybdenum, niobium, tantalum, titanium, vanadium, and zirconium can form stable body-centered-cubic (BCC) structures across a large temperature region (25°C to 1000°C). This is the same crystal structure as γ-uranium (U), which has shown desirable thermal and irradiation behavior in previous alloy fuel research. It is hypothesized then that the MPEA alloying approach can be used to produce a stable BCC uranium-bearing alloy and to retain its stability throughout anticipated operating regimes of power-producing reactors. Candidate elements were assessed using Monte Carlo N-Particle (MCNP) analysis to determine uranium densities necessary to make the alloy an economically viable fuel compared to conventional fuel forms. Following neutronic considerations, materials property databases and empirical predictors were used to determine the compositions with a high potential to form a BCC solid solution alloy. The final four alloys were MoNbTaU2, MoNbTiU2, NbTaTiU2, and NbTaVU2, which were cast using arc melting of raw elemental foils and chunks. Characterization of the fabricated alloys included scanning electron microscopy, X-ray diffraction, energy dispersive X-ray spectroscopy, and transmission electron microscopy. The results showed a two-phase system with a U-rich matrix phase surrounding the refractory precipitates. The U phase was found to contain varying concentrations of the alloying elements and was a BCC γ-U phase. These results warrant further research to identify ideal compositions for use as an advanced alloy fuel.
Citation
Nuclear Technology
Volume
210
Issue
3

Keywords

Alloy fuel, multi-principal element alloys, fuel fabrication, fuel characterization, actinide alloys.

Citation

Beausoleil, G. , Zillinger, J. , Hawkins, L. , Yao, T. , Weiss, A. , Pu, X. , Jerred, N. and Kaoumi, D. (2024), Designing Nuclear Fuels with a Multi-Principal Element Alloying Approach, Nuclear Technology, [online], https://doi.org/10.1080/00295450.2023.2236796, https://tsapps.nist.gov/publication/get_pdf.cfm?pub_id=959043 (Accessed December 12, 2024)

Issues

If you have any questions about this publication or are having problems accessing it, please contact reflib@nist.gov.

Created March 1, 2024, Updated October 31, 2024