scholarly journals THE McSAFE PROJECT - HIGH-PERFORMANCE MONTE CARLO BASED METHODS FOR SAFETY DEMONSTRATION: FROM PROOF OF CONCEPT TO INDUSTRY APPLICATIONS

2021 ◽  
Vol 247 ◽  
pp. 06004
Author(s):  
V. H. Sanchez-Espinoza ◽  
L. Mercatali ◽  
J. Leppänen ◽  
E. Hoogenboom ◽  
R. Vocka ◽  
...  

The increasing use of Monte Carlo methods for core analysis is fostered by the huge and cheap computer power available nowadays e.g. in large HPC. Apart from the classical criticality calculations, the application of Monte Carlo methods for depletion analysis and cross section generation for diffusion and transport core simulators is also expanding. In addition, the development of multi-physics codes by coupling Monte Carlo solvers with thermal hydraulic codes (CFD, subchannel and system thermal hydraulics) to perform full core static core analysis at fuel assembly or pin level has progressed in the last decades. Finally, the extensions of the Monte Carlo codes to describe the behavior of prompt and delay neutrons, control rod movements, etc. has been started some years ago. Recent coupling of dynamic versions of Monte Carlo codes with subchannel codes make possible the analysis of transient e.g. rod ejection accidents and it paves the way for the simulation of any kind of design basis accidents as an alternative option to the use of diffusion and transport based deterministic solvers. The H2020 McSAFE Project is focused on the improvement of methods for depletion considering thermal hydraulic feedbacks, extension of the coupled neutronic/thermal hydraulic codes by the incorporation of a fuel performance solver, the development of dynamic Monte Carlo codes and the development of methods to handle large depletion problems and to reduce the statistical uncertainty. The validation of the multi-physics tools developed within McSAFE will be performed using plant data and unique tests e.g. the SPERT III E REA test. This paper will describe the main developments, solution approaches, and selected results.

Author(s):  
Gabriele Keller ◽  
Hugh Chaffey-Millar ◽  
Manuel M. T. Chakravarty ◽  
Don Stewart ◽  
Christopher Barner-Kowollik

Author(s):  
Bair V. Banzarov ◽  
◽  
Alexander A. Vinokurov ◽  

The paper introduces a fast Monte Carlo method developed for simulation of gamma density measurements. A main advantage of this method is its high performance. For simulation of tool responses, the proposed method is faster than conventional Monte Carlo methods by several orders of magnitude. The demonstrated performance of the proposed method allows its using in analysis and interpretation of measurements obtained in beds with complex geometry.


2016 ◽  
Vol 360 (1) ◽  
pp. 160-178 ◽  
Author(s):  
Amanda L. T. Brandão ◽  
Joao B. P. Soares ◽  
Jose C. Pinto ◽  
Andre L. Alberton

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