Fusion-Fission Hybrid for Fissile Fuel Production without Processing (open access)

Fusion-Fission Hybrid for Fissile Fuel Production without Processing

Two scenarios are typically envisioned for thorium fuel cycles: 'open' cycles based on irradiation of {sup 232}Th and fission of {sup 233}U in situ without reprocessing or 'closed' cycles based on irradiation of {sup 232}Th followed by reprocessing, and recycling of {sup 233}U either in situ or in critical fission reactors. This study evaluates a third option based on the possibility of breeding fissile material in a fusion-fission hybrid reactor and burning the same fuel in a critical reactor without any reprocessing or reconditioning. This fuel cycle requires the hybrid and the critical reactor to use the same fuel form. TRISO particles embedded in carbon pebbles were selected as the preferred form of fuel and an inertial laser fusion system featuring a subcritical blanket was combined with critical pebble bed reactors, either gas-cooled or liquid-salt-cooled. The hybrid reactor was modeled based on the earlier, hybrid version of the LLNL Laser Inertial Fusion Energy (LIFE1) system, whereas the critical reactors were modeled according to the Pebble Bed Modular Reactor (PBMR) and the Pebble Bed Advanced High Temperature Reactor (PB-AHTR) design. An extensive neutronic analysis was carried out for both the hybrid and the fission reactors in order to track the fuel …
Date: January 2, 2012
Creator: Fratoni, M.; Moir, R. W.; Kramer, K. J.; Latkowski, J. F.; Meier, W. R. & Powers, J. J.
Object Type: Report
System: The UNT Digital Library
Cryogenic thermonuclear fuel implosions on the National Ignition Facility (open access)

Cryogenic thermonuclear fuel implosions on the National Ignition Facility

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Date: January 2, 2012
Creator: Glenzer, S. H.; Callahan, D.; Mackinnon, A. J.; Kline, J. L.; Grim, G.; Alger, E. T. et al.
Object Type: Article
System: The UNT Digital Library