TY - JOUR
T1 - Phase characteristics of a U-20Pu-3Am-2Np-15Zr metallic alloy containing rare earths
AU - Burkes, Douglas E.
AU - Rory Kennedy, J.
AU - Hartmann, Thomas
AU - Papesch, Cynthia A.
N1 - Funding Information:
This work is supported by the U.S. Department of Energy, Office of Nuclear Energy (NE) , under DOE Idaho Operations Office Contract DE-AC07-05ID14517. The authors are especially grateful to the Analytical Laboratory (AL) and Fuel Manufacturing Facility (FMF) staff. The authors wish to specifically acknowledge Mr. Andrew Maddison, Dr. Steven Frank, Mr. Timothy Hyde, Mr. Jim Stuart, Dr. Leah Squires, Mr. Jim Morrison, Mr. Scott Wilde, Mr. Benjamin Krause, and Dr. Marsha Lambregts for their assistance with fabrication, sample preparation, and material transfers related to these experiments. Finally, the authors would like to acknowledge the Health and Physics staff for their continued support of this work in the AL and FMF facilities.
PY - 2009/12
Y1 - 2009/12
N2 - Metallic fuel alloys consisting of uranium, plutonium, and zirconium with minor additions of americium and neptunium are under evaluation for potential use to transmute long-lived transuranic actinide isotopes in fast reactors. The current irradiation test series design, designated AFC2, includes minor additions of rare earth elements to simulate expected fission product carry-over from the electrochemical molten salt reprocessing technique. The metal fuel alloys have been fabricated by an arc casting technique. The as-cast fuel alloys have been investigated for phase and thermal properties, specifically, enthalpies of transition, transition temperatures, and room temperature phase characteristics. Results and observations related to these characteristics for the "fresh" fuel alloys are provided. The alloy compositions are based on a U-20Pu-3Am-2Np-15Zr alloy, along with additions of 1 and 1.5 wt% RE (at the expense of U) where RE denotes rare earth alloy of cerium, lanthanum, praseodymium and neodymium. Phase behavior and associated transitions have been compared to available U-Pu-Zr ternary diagrams with acceptable agreement. Enthalpies of transition were deconvoluted from heating and cooling thermal traces for relatively reliable values. The rare earth additions to the base alloy have a minimal influence on the room temperature phases present, but the room temperature phases present slightly impacted the enthalpies of transition and transition temperatures.
AB - Metallic fuel alloys consisting of uranium, plutonium, and zirconium with minor additions of americium and neptunium are under evaluation for potential use to transmute long-lived transuranic actinide isotopes in fast reactors. The current irradiation test series design, designated AFC2, includes minor additions of rare earth elements to simulate expected fission product carry-over from the electrochemical molten salt reprocessing technique. The metal fuel alloys have been fabricated by an arc casting technique. The as-cast fuel alloys have been investigated for phase and thermal properties, specifically, enthalpies of transition, transition temperatures, and room temperature phase characteristics. Results and observations related to these characteristics for the "fresh" fuel alloys are provided. The alloy compositions are based on a U-20Pu-3Am-2Np-15Zr alloy, along with additions of 1 and 1.5 wt% RE (at the expense of U) where RE denotes rare earth alloy of cerium, lanthanum, praseodymium and neodymium. Phase behavior and associated transitions have been compared to available U-Pu-Zr ternary diagrams with acceptable agreement. Enthalpies of transition were deconvoluted from heating and cooling thermal traces for relatively reliable values. The rare earth additions to the base alloy have a minimal influence on the room temperature phases present, but the room temperature phases present slightly impacted the enthalpies of transition and transition temperatures.
UR - https://www.scopus.com/pages/publications/70449670354
U2 - 10.1016/j.nucengdes.2009.08.023
DO - 10.1016/j.nucengdes.2009.08.023
M3 - Article
AN - SCOPUS:70449670354
SN - 0029-5493
VL - 239
SP - 2747
EP - 2753
JO - Nuclear Engineering and Design
JF - Nuclear Engineering and Design
IS - 12
ER -