Power maximization method for land-transportable fully passive lead–bismuth cooled small modular reactor systems

•The power maximization method for LBE natural circulation cooled SMRs was developed.•The two powers in view of neutronics and thermal-hydraulics were considered.•The limitations for designing of LBE natural circulation cooled SMRs were summarized.•The necessary conditions for safety shutdown in acc...

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Veröffentlicht in:Nuclear engineering and design 2015-08, Vol.289, p.240-251
Hauptverfasser: Cho, Jaehyun, Shin, Yong-Hoon, Hwang, Il Soon
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Sprache:eng
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Zusammenfassung:•The power maximization method for LBE natural circulation cooled SMRs was developed.•The two powers in view of neutronics and thermal-hydraulics were considered.•The limitations for designing of LBE natural circulation cooled SMRs were summarized.•The necessary conditions for safety shutdown in accidents were developed.•The maximized power in the case study is 206MW thermal. Although current pressurized water reactors (PWRs) have significantly contributed to global energy supply, PWR technology has not been considered a trustworthy energy solution owing to its problems of spent nuclear fuels (SNFs), nuclear safety, and nuclear economy. In order to overcome these problems, a lead–bismuth eutectic (LBE) fully passive cooling small modular reactor (SMR) system is suggested. This technology can not only provide the solution for the problems of SNFs through the transmutation feature of the LBE coolant, but also strengthen safety and economy through the concept of natural circulation cooling SMRs. It is necessary to maximize the advantages, namely safety and economy, of this type of nuclear power plants for broader applications in the future. Accordingly, the objective of this study is to maximize the reactor core power while satisfying the limitations of shipping size, materials endurance, and criticality of a long-burning core as well as safety under beyond design basis events. To achieve these objectives, the design limitations of natural circulating LBE-cooling SMRs are derived. Then, the power maximization method is developed based on obtaining the design limitations. The results of this study are expected to contribute to the effectiveness of the reactor design stage by providing insights to designers, as well as by formulating methods for the power maximization of other types of SMRs.
ISSN:0029-5493
1872-759X
DOI:10.1016/j.nucengdes.2015.04.027