Neutronics Design for Lead-Bismuth Cooled Accelerator-Driven System for Transmutation of Minor Actinide

Нейтронно-физическое проектирование ускорительно-управляемой системы с охлаждением свинец—висмут для трансмутации минорных актинидов
Kazufumi Tsujimoto, Toshinobu Sasa, Kenji Nishihara, Hiroyuki Oigawa, Hideki TAKANO
2004-01-01

accelerator-driven systemburnup reactivity swingeffective multiplication factorlead-bismuth coolantminor actinide transmutation
Neutronics design study was performed for lead-bismuth cooled accelerator-driven system (ADS) to transmute minor actinides. Early study for ADS indicated two problems: a large burnup reactivity swing and a significant peaking factor. To solve these problems, effect of design parameters on neutronics characteristics were searched. The design parameters were initial plutonium loading, buffer region between spallation target and core, and zone fuel loading. Parametric survey calculations were performed considering fuel cycle consisting of burnup and recycle. The results showed that burnup reactivity swing depends on the plutonium fraction in the initial fuel loading, and the lead-bismuth buffer region and the two-zone loading were effective for solving the problems. Moreover, an optimum value for the effective multiplication factor was also evaluated using reactivity coefficients. From the result, the maximum allowable value of the effective multiplication factor for a practical ADS can be set at 0.97. Consequently, a new core concept combining the buffer region and the two-zone loading was proposed base on the results of the parametric survey.
1
A lead-bismuth buffer region between the spallation target and core, together with two-zone fuel loading, reduces reactivity swing and peaking-factor problems.
2
A neutronics design study evaluated a lead-bismuth-cooled accelerator-driven system for minor-actinide transmutation across burnup and recycle cycles.
3
A new core concept combining the buffer region and two-zone loading was proposed based on the parametric survey results.
4
Burnup reactivity swing depends on the plutonium fraction in the initial fuel loading.
5
Reactivity-coefficient analysis indicated that the maximum practical effective multiplication factor can be set at 0.97.

lead-bismuth-cooled accelerator-driven system (ADS) for minor-actinide transmutation

neutronics characteristics and core-design optimization, including burnup reactivity swing, peaking factor, and effective multiplication factor

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2004-01-01
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Kazufumi Tsujimoto
Toshinobu Sasa
Kenji Nishihara
Hiroyuki Oigawa
Hideki TAKANO
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