Transmutation Dynamics: Impacts of Multi-Recycling on Fuel Cycle Performances

Динамика трансмутации: влияние многократного рециклирования на характеристики топливного цикла
Michael A. Pope, Samuel E. Bays, Steve Piet, Gilles Youinou, Amaury Dumontier, D. C. Hawn
2009-09-01

MOX fuelfuel cycle performanceheterogeneous IMF assembliesmulti-recyclingtransmutation dynamics
From a physics standpoint, it is feasible to sustain continuous multi-recycle in either thermal or fast reactors. In Fiscal Year 2009, transmutaton work at INL provided important new insight, caveats, and tools on multi-recycle. Multi-recycle of MOX, even with all the transuranics, is possible provided continuous enrichment of the uranium phase to ~6.5% and also limitting the transuranic enrichment to slightly less than 8%. Multi-recycle of heterogeneous-IMF assemblies is possible with continuous enrichment of the UOX pins to ~4.95% and having =60 of the 264 fuel pins being inter-matrix. A new tool enables quick assessment of the impact of different cooling times on isotopic evolution. The effect of cooling time was found to be almost as controlling on higher mass actinide concentrations in fuel as the selection of thermal versus fast neutron spectra. A new dataset was built which provides on-the-fly estimates of gamma and neutron dose in MOX fuels as a function of the isotopic evolution. All studies this year focused on the impact of dynamic feedback due to choices made in option space. Both the equilibrium fuel cycle concentrations and the transient time to reach equilibrium for each isotope were evaluated over a range of reactor, reprocessing and cooling time combinations. New bounding cases and analysis methods for evaluating both reactor safety and radiation worker safety were established. This holistic collection of physics analyses and methods gives improved resolution of fuel cycle options, and impacts thereof, over that of previous ad-hoc and single-point analyses.
1
All-transuranic MOX can be multi-recycled with continuous uranium-phase enrichment to approximately 6.5% and transuranic enrichment below 8%.
2
Continuous multi-recycling is physically feasible in both thermal and fast reactors, subject to fuel-composition constraints.
3
Cooling time strongly controls higher-mass actinide concentrations, with an influence comparable to choosing thermal versus fast neutron spectra.
4
Heterogeneous-IMF assemblies can be multi-recycled using approximately 4.95% enrichment in UOX pins and 60 of 264 fuel pins as inter-matrix pins.
5
New tools and datasets enable rapid assessment of isotopic evolution, gamma and neutron doses, equilibrium concentrations, transient times, and safety impacts across fuel-cycle options.

continuous multi-recycle nuclear fuel cycles involving MOX and heterogeneous-IMF assemblies in thermal or fast reactors

the effects of reactor type, uranium and transuranic enrichment, reprocessing, and cooling-time choices on isotopic evolution, equilibrium actinide concentrations, transient behavior, and radiation and reactor safety performance

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2009-09-01
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Michael A. Pope
Samuel E. Bays
Steve Piet
Gilles Youinou
Amaury Dumontier
D. C. Hawn
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