Criticality effect according to axial burnup profiles in PWR burnup credit analysis

The purpose of the critical evaluation of the spent fuel pool (SFP) is to verify that the maximum effective multiplication factor (Keff) is less than the critical safety limit at 100% stored condition of the spent fuel with the maximum reactivity. At nuclear power plants, the storage standard of spe...

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Veröffentlicht in:Nuclear engineering and technology 2019, 51(6), , pp.1708-1714
Hauptverfasser: Kim, Kiyoung, Hong, Junhee
Format: Artikel
Sprache:eng
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Zusammenfassung:The purpose of the critical evaluation of the spent fuel pool (SFP) is to verify that the maximum effective multiplication factor (Keff) is less than the critical safety limit at 100% stored condition of the spent fuel with the maximum reactivity. At nuclear power plants, the storage standard of spent fuel, ie, the loading curve, is established to prevent criticality from being generated in SFP. Here, the loading curve refers to a graph showing the minimum discharged burnup versus the initial enrichment of spent fuel. Recently, US NRC proposed the new critical safety assessment guideline (DSS-ISG-2010-01, Revision 0) of PWR SFPs and most of utilities in US is following it. Of course, the licensed criterion of the maximum effective multiplication factor of SFP remains unchanged and it should be less than 0.95 from the 95% probability and the 95% confidence level. However, the new guideline is including the new evaluation methodologies like the application of the axial burnup profile, the validation of depletion and criticality code, and trend analysis. Among the new evaluation methodologies, the most important factor that affects Keff is the axial burnup profile of spent fuel. US NRC recommends to consider the axial burnup profiles presented in NUREG-6801 in criticality analysis. In this paper, criticality effect was evaluated considering three profiles, respectively: i) Axial burnup profiles presented in NUREG-6801. ii) Representative PWR axial burnup profile. iii) Uniform axial burnup profile. As the result, the case applying the axial burnup profiles presented in NUREG-6801 showed the highest Keff among three cases. Therefore, we need to introduce a new methodology because it can be issued if the axial burnup profiles presented in NUREG/CR-6801 are applied to the domestic nuclear power plants without any other consideration. Keywords: Criticality, Axial burnup profile, Uniform burnup profile, Spent fuel, Burnup credit, Spent fuel pool, Rack, Neutron absorber
ISSN:1738-5733
2234-358X
DOI:10.1016/j.net.2019.04.012