The loss of coolant accidents with core degradation e.g. TMI-2 and Fukushima demonstrated that the nuclear safety analysis has to cover accident sequences involving a late reflood activation in order to develop appropriate and reliable mitigation strategies for both, existing and advanced reactors. The reflood (injection of water) is possible if one or several water sources become available during the accident. In a late phase of accident, no well-defined coolant paths would exist and a large part of the core would resemble to a debris bed e.g. particles with characteristic length-scale: 1 to 5 mm, as observed in TMI-2. The French “Institut de Radioprotection et de Sûreté Nucléaire” (IRSN) is developing experimental programs (PEARL and PRELUDE) and simulation tools (ICARE-CATHARE and ASTEC) to study and optimize the severe accident management strategy and to assess the probabilities to stop the progress of in-vessel core degradation at a late stage of an accident. The purpose of this paper is to propose a consistent thermo-hydraulic model of reflood of severely damaged reactor core for ICARE-CATHARE code. The comparison of the calculations with PRELUDE experimental results is presented. It is shown that the quench front exhibits either a 1D behavior or a 2D one, depending on injection rate or bed characteristics. The PRELUDE data cover a rather large range of variation of parameters for which the developed model appears to be quite predictive.
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2012 20th International Conference on Nuclear Engineering and the ASME 2012 Power Conference
July 30–August 3, 2012
Anaheim, California, USA
Conference Sponsors:
- Nuclear Engineering Division
- Power Division
ISBN:
978-0-7918-4499-1
PROCEEDINGS PAPER
Code Simulation of Quenching of a High Temperature Debris Bed: Model Improvement and Validation With Experimental Results Available to Purchase
A. Bachrata,
A. Bachrata
Institut de Radioprotection et de Sûreté Nucléaire, Saint Paul Lez Durance, France
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F. Fichot,
F. Fichot
Institut de Radioprotection et de Sûreté Nucléaire, Saint Paul Lez Durance, France
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G. Repetto,
G. Repetto
Institut de Radioprotection et de Sûreté Nucléaire, Saint Paul Lez Durance, France
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M. Quintard,
M. Quintard
1 Université de Toulouse, Toulouse, France
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J. Fleurot
J. Fleurot
Institut de Radioprotection et de Sûreté Nucléaire, Saint Paul Lez Durance, France
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A. Bachrata
Institut de Radioprotection et de Sûreté Nucléaire, Saint Paul Lez Durance, France
F. Fichot
Institut de Radioprotection et de Sûreté Nucléaire, Saint Paul Lez Durance, France
G. Repetto
Institut de Radioprotection et de Sûreté Nucléaire, Saint Paul Lez Durance, France
M. Quintard
1 Université de Toulouse, Toulouse, France
J. Fleurot
Institut de Radioprotection et de Sûreté Nucléaire, Saint Paul Lez Durance, France
Paper No:
ICONE20-POWER2012-54221, pp. 77-85; 9 pages
Published Online:
October 30, 2013
Citation
Bachrata, A, Fichot, F, Repetto, G, Quintard, M, & Fleurot, J. "Code Simulation of Quenching of a High Temperature Debris Bed: Model Improvement and Validation With Experimental Results." Proceedings of the 2012 20th International Conference on Nuclear Engineering and the ASME 2012 Power Conference. Volume 5: Fusion Engineering; Student Paper Competition; Design Basis and Beyond Design Basis Events; Simple and Combined Cycles. Anaheim, California, USA. July 30–August 3, 2012. pp. 77-85. ASME. https://doi.org/10.1115/ICONE20-POWER2012-54221
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