Safety evaluation of accident-tolerant FCM fueled core with SiC-coated zircalloy cladding for design-basis-accidents and beyond DBAs

•Thermal conductivity model of the FCM fuel was developed and adopted in the MARS.•Scoping analysis for candidate FCM FAs was performed to select feasible FA.•Preliminary safety criteria for FCM fuel and SiC/Zr cladding were set up.•Enhanced safety margin and accident tolerance for FCM-SiC/Zr core w...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Veröffentlicht in:Nuclear engineering and design 2015-08, Vol.289 (C), p.287-295
Hauptverfasser: Chun, Ji-Han, Lim, Sung-Won, Chung, Bub-Dong, Lee, Won-Jae
Format: Artikel
Sprache:eng
Schlagworte:
Online-Zugang:Volltext
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Beschreibung
Zusammenfassung:•Thermal conductivity model of the FCM fuel was developed and adopted in the MARS.•Scoping analysis for candidate FCM FAs was performed to select feasible FA.•Preliminary safety criteria for FCM fuel and SiC/Zr cladding were set up.•Enhanced safety margin and accident tolerance for FCM-SiC/Zr core were demonstrated. The FCM fueled cores proposed as an accident tolerant concept is assessed against the design-basis-accident (DBA) and the beyond-DBA (BDBA) scenarios using MARS code. A thermal conductivity model of FCM fuel is incorporated in the MARS code to take into account the effects of irradiation and temperature that was recently measured by ORNL. Preliminary analyses regarding the initial stored energy and accident tolerant performance were carried out for the scoping of various cladding material candidates. A 16×16 FA with SiC-coated Zircalloy cladding was selected as the feasible conceptual design through a preliminary scoping analysis. For a selected design, safety analyses for DBA and BDBA scenarios were performed to demonstrate the accident tolerance of the FCM fueled core. A loss of flow accident (LOFA) scenario was selected for a departure-from-nucleate-boiling (DNB) evaluation, and large-break loss of coolant accident (LBLOCA) scenario for peak cladding temperature (PCT) margin evaluation. A control element assembly (CEA) ejection accident scenario was selected for peak fuel enthalpy and temperature. Moreover, a station blackout (SBO) and LBLOCA without a safety injection (SI) scenario were selected as a BDBA. It was demonstrated that the DBA safety margin of the FCM core is satisfied and the time for operator actions for BDBA s is evaluated.
ISSN:0029-5493
1872-759X
DOI:10.1016/j.nucengdes.2015.04.021