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http://dx.doi.org/10.14248/JKOSSE.2022.18.2.058

A Systems Engineering Approach to Multi-Physics Analysis of a CEA Withdrawal Accident  

Jan, Hruskovic (Department of NPP Engineering, KEPCO International Nuclear Graduate School)
Kajetan Andrzej, Rey (Department of NPP Engineering, KEPCO International Nuclear Graduate School)
Aya, Diab (Department of NPP Engineering, KEPCO International Nuclear Graduate School)
Publication Information
Journal of the Korean Society of Systems Engineering / v.18, no.2, 2022 , pp. 58-74 More about this Journal
Abstract
Deterministic accident analysis plays a central role in the nuclear power plant (NPP) safety evaluation and licensing process. Traditionally the conservative approach opted for the point kinetics model, expressing the reactor core parameters in the form of reactivity and power tables. However, with the current advances in computational power, high fidelity multi-physics simulations using real-time code coupling, can provide more detailed core behavior and hence more realistic plant's response. This is particularly relevant for transients where the core is undergoing reactivity anomalies and uneven power distributions with strong feedback mechanisms, such as reactivity initiated accidents (RIAs). This work addresses a RIA, specifically a control element assembly (CEA) withdrawal at power, using the multi-physics analysis tool RELAP5/MOD 3.4/3DKIN. The thermal-hydraulics (TH) code, RELAP5, is internally coupled with the nodal kinetics (NK) code, 3DKIN, and both codes exchange relevant data to model the nuclear power plant (NPP) response as the CEA is withdrawn from the core. The coupled model is more representative of the complex interactions between the thermal-hydraulics and neutronics; therefore the results obtained using a multi-physics simulation provide a larger safety margin and hence more operational flexibility compared to those of the point kinetics model reported in the safety analysis report for APR1400. The systems engineering approach is used to guide the development of the work ensuring a systematic and more efficient execution.
Keywords
Systems Engineering; Nuclear Engineering; Multi-Physics Simulation; APR1400; RELAP5; Accident Analysis; Reactivity Initiated Accidents;
Citations & Related Records
Times Cited By KSCI : 3  (Citation Analysis)
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