• NUCLEAR TECHNIQUES
  • Vol. 46, Issue 9, 090604 (2023)
Yingjie XIAO1、2, Liangxing PENG1、2, Pengcheng ZHAO1、2、*, Qiong LI1、2, Wan LUO1, and Tao YU1、2
Author Affiliations
  • 1School of Nuclear Science and Technology, University of South China, Hengyang 421001, China
  • 2Virtual Simulation Experiment Teaching Center on Nuclear Energy and Technology, University of South China, Hengyang 421001, China
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    DOI: 10.11889/j.0253-3219.2023.hjs.46.090604 Cite this Article
    Yingjie XIAO, Liangxing PENG, Pengcheng ZHAO, Qiong LI, Wan LUO, Tao YU. Determination of the maximum core power of natural circulation leadbismuth reactors[J]. NUCLEAR TECHNIQUES, 2023, 46(9): 090604 Copy Citation Text show less

    Abstract

    Background

    Because of the excellent properties of lead-based materials as reactor coolants, lead-based fast reactors have become a key type of fourth-generation advanced nuclear energy systems. A small passive long-life Lead–bismuth -cooled fast Reactor (SPALLER) is designed by the University of South China for profound research.

    Purpose

    This study aims to improve the inherent safety and cost-effectiveness of lead–bismuth-cooled fast reactors, and determine the maximum core power of this kind of reactor.

    Methods

    Firstly, the SPALLER was taken as research object, and five steady-state limitations and two accident limitations were proposed to meet the transportation size, material durability, and long-term operational stability of the reactor core and ensure safety under accident conditions. Then, a neutronics maximum power calculation platform was built through Latin hypercube sampling and a Kriging proxy model whilst the steady-state limitations were considered as multi-objective optimization problems with complex multidimensional nonlinear constraints. Meanwhile, the neutronics maximum power and natural circulation power of SPALLER-100 at different core heights were calculated by taking the natural circulation ability of SPALLER-100 into account. Finally, a design scheme was obtained to meet the requirements of neutronic and thermal-hydraulic assessments of this reactor while producing maximum power. Consequently, during the full life-cycle of SPALLER-100, a safety analysis of three typical accident scenarios (loss of heat sink, transient over power, and coolant inlet temperature undercooling) was performed using a quasi-static reactivity balance approach.

    Results

    The results show that the maximum core power can be increased from 100 MW to 120 MW, and the neutronics maximum power calculation platform has high accuracy with safe and economical maximum power scheme.

    Conclusions

    This study can provide reference for other types of natural circulation reactors to maximize power output.

    Yingjie XIAO, Liangxing PENG, Pengcheng ZHAO, Qiong LI, Wan LUO, Tao YU. Determination of the maximum core power of natural circulation leadbismuth reactors[J]. NUCLEAR TECHNIQUES, 2023, 46(9): 090604
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