Analysis on Fast Breeder Reactor (FBR) Performances and Plutonium Production Profile of Loading Minor Actinide (MA) in FBR Blanket

An investigated process of recycling option based on minor actinide (MA) composition in the reactor design has been investigated which is based on fast breeder reactor (FBR) type as reference reactor type. The paper investigated some significant parameters of reactor operation, fuel sustainability and nuclear non-proliferation point of view. As initial fuel composition some composition of light water reactor (LWR) spent fuels are used and loaded into the such as mixed oxide (MOX) in the core regions and minor actinide doping is loaded into blanket regions. It is shows that criticality condition as indicating reactor operation time is obtained less for loading MA case in the blanket regions in comparing with no loading MA. It indicates a shorter reactor operation time is obtained for loading MA than without loading MA. Conversion rasio level or breeding rasio, is obtained less conversion rasio for loading MA which shows less fissile material production when some portion of U-238 is replaced by MA loading. Although, during reactor operation, some fissile plutonium materials such as Pu-239 are also produced from MA loading, however, it still less production in comparing with fissile plutonium production from direct process from converted U-238. It shows more Pu-238 can be produced than Pu-240 because of main portion of MA is Np-237 which can be directly produce more Pu-238 than Pu- 240. As protected plutonium composition (Pu-238 and Pu-240), loading MA produces some even mass plutonium isotopes in the blanket regions and loading 5 % of MA doping, obtains more than enough composition based on Kessler’criterion to estimate the level of technical difficulty for contructing explosive nuclear devices based on internal heating of Pu-238.

[1]  Mitsutoshi Suzuki,et al.  ICONE19-43573 PROLIFERATION RESISTANCE ANALYSIS OF PLUTONIUM FROM LWR DURING MULTI-RECYCLING WITH MA IN FBR , 2011 .

[2]  S. Permana,et al.  Basic Analysis on Isotopic Barrier of Material Attractiveness Based on Plutonium Composition of FBR , 2011 .

[3]  H. Sagara,et al.  Protected Plutonium Breeding by Transmutation of Minor Actinides in Fast Breeder Reactor , 2008 .

[4]  Robert Hill,et al.  Assessment of a Heterogeneous PWR Assembly for Plutonium and Minor Actinide Recycle , 2006 .

[5]  Weston M. Stacey,et al.  Comparative Fuel Cycle Analysis of Critical and Subcritical Fast Reactor Transmutation Systems , 2003 .

[6]  H. Takano,et al.  Japanese Evaluated Nuclear Data Library Version 3 Revision-3: JENDL-3.3 , 2002 .

[7]  Bruno Pellaud,et al.  Proliferation aspects of plutonium recycling , 2002 .

[8]  Masaki Saito,et al.  Multi-component self-consistent nuclear energy system for sustainable growth , 2002 .

[9]  T. Downar,et al.  A liquid-metal reactor for burning minor actinides of spent light water reactor fuel-I: Neutronics design study , 1999 .

[10]  Sidik Permana,et al.  Effect of TRU fuel loading on core performance and plutonium production of FBR , 2011 .

[11]  Makoto,et al.  The Revision of Nuclear Constant Set for Fast Reactor, JFS-3-J3.2 , 2009 .

[12]  M. Nakagawa SLAROM: A Code for Cell Homogenization Calculation of Fast Reactor , 1984 .

[13]  D. R. Vondy,et al.  NUCLEAR REACTOR CORE ANALYSIS CODE: CITATION. , 1970 .