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MVP-BURNを用いた軸方向詳細モデルによるHTTRの燃焼特性解析

HTTR burnup characteristic analysis with detailed axial burning region using MVP-BURN

池田 礼治*; Ho, H. Q.   ; 長住 達; 石井 俊晃 ; 濱本 真平  ; 中野 優美*; 石塚 悦男   ; 藤本 望*

Ikeda, Reiji*; Ho, H. Q.; Nagasumi, Satoru; Ishii, Toshiaki; Hamamoto, Shimpei; Nakano, Yumi*; Ishitsuka, Etsuo; Fujimoto, Nozomu*

MVP-BURNを用いてHTTR炉心の燃焼計算を行い、炉内温度分布を考慮した場合の影響とタリー領域分割を細分化した場合の影響を調べた。この結果、炉内温度分布を考慮した場合については、実効増倍率や主要核種密度に大きな影響がなかったこと、燃料ブロックごとの局所な$$^{235}$$U, $$^{239}$$Pu及び$$^{10}$$Bの物質量が最大で約6%、約8%及び約30%の差が生じたことが明らかとなった。また、タリー領域分割を細分化した場合については、実効増倍率への影響が0.6%$$Delta$$k/k以下と小さかったこと、黒鉛反射体の効果も含めた物質量の詳細分布、従来の計算より燃焼挙動を詳細に評価できることが明らかとなった。

Burnup calculation of the HTTR considering temperature distribution and detailed burning regions was carried out using MVP-BURN code. The results show that the difference in k$$_{rm eff}$$, as well as the difference in average density of some main isotopes, is insignificant between the cases of uniform temperature and detailed temperature distribution. However, the difference in local density is noticeable, being 6% and 8% for $$^{235}$$U and $$^{239}$$Pu, respectively, and even 30% for the burnable poison $$^{10}$$B. Regarding the division of burning regions to more detail, the change of k$$_{rm eff}$$ is also small of 0.6%$$Delta$$k/k or less. The small burning region gives a detailed distribution of isotopes such as $$^{235}$$U, $$^{239}$$Pu, and $$^{10}$$B. As a result, the effect of graphite reflector and the burnup behavior could be evaluated more clearly compared with the previous study.

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