High Moderation MOX Cores for Effective Use of Plutonium in LWRs

Conceptual design studies have been performed for high moderation full MOX cores aiming at increasing fissile Pu consumption rate (ratio of the consumed to the loaded fissile Pu) and reducing residual Pu in discharged MOX fuel. The BWR cores studied have hydrogen to heavy metal ratio (H/HM) of 5.9 w...

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Veröffentlicht in:Journal of the Atomic Energy Society of Japan / Atomic Energy Society of Japan 2001/05/30, Vol.43(5), pp.503-517
Hauptverfasser: HAMAMOTO, Kazuko, KANAGAWA, Takashi, HIRAIWA, Koji, SAKURADA, Koichi, MORIWAKI, Masanao, AOYAMA, Motoo, YAMAMOTO, Toru, UEJI, Masao
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Sprache:jpn
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Zusammenfassung:Conceptual design studies have been performed for high moderation full MOX cores aiming at increasing fissile Pu consumption rate (ratio of the consumed to the loaded fissile Pu) and reducing residual Pu in discharged MOX fuel. The BWR cores studied have hydrogen to heavy metal ratio (H/HM) of 5.9 with increasing water rods and 7.0 with reducing a fuel rod diameter based on a reference 9×9 fuel (H/HM=4.9) of ABWR. The PWR cores studied have H/HM of 5.0 and 6.0 with reducing a fuel rod diameter based on a reference 17×17 fuel (H/HM=4.0) of APWR. Equilibrium core design and plant safety analyses showed that those high moderation cores have compatibility with ABWR and APWR. The fissile Pu consumption rate is 22% larger than the full MOX cores with reference fuel of ABWR and 50% for APWR. The core performance and compatibility has been also evaluated in the condition of multi-recycle of Pu in these high moderation cores. Study has been conducted to evaluate the effect of introducing these high moderation cores in the fuel cycle of Japan. It shows that the high moderation cores produce 26% more cumulative electricity and reduce 22% stock of the fissile Pu by 2050 than the reference cores.
ISSN:0004-7120
2186-5256
DOI:10.3327/jaesj.43.503