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http://dx.doi.org/10.5516/NET.2009.41.8.1045

PREDICTION OF FREE SURFACE FLOW ON CONTAINMENT FLOOR USING A SHALLOW WATER EQUATION SOLVER  

Bang, Young-Seok (Korea Institute of Nuclear Safety)
Lee, Gil-Soo (Korea Institute of Nuclear Safety)
Huh, Byung-Gil (Korea Institute of Nuclear Safety)
Oh, Deog-Yeon (Korea Institute of Nuclear Safety)
Woo, Sweng-Woong (Korea Institute of Nuclear Safety)
Publication Information
Nuclear Engineering and Technology / v.41, no.8, 2009 , pp. 1045-1052 More about this Journal
Abstract
A calculation model is developed to predict the transient free surface flow on the containment floor following a loss-of-coolant accident (LOCA) of pressurized water reactors (PWR) for the use of debris transport evaluation. The model solves the two-dimensional Shallow Water Equation (SWE) using a finite volume method (FVM) with unstructured triangular meshes. The numerical scheme is based on a fully explicit predictor-corrector method to achieve a fast-running capability and numerical accuracy. The Harten-Lax-van Leer (HLL) scheme is used to reserve a shock-capturing capability in determining the convective flux term at the cell interface where the dry-to-wet changing proceeds. An experiment simulating a sudden break of a water reservoir with L-shape open channel is calculated for validation of the present model. It is shown that the present model agrees well with the experiment data, thus it can be justified for the free surface flow with accuracy. From the calculation of flow field over the simplified containment floor of APR1400, the important phenomena of free surface flow including propagations and interactions of waves generated by local water level distribution and reflection with a solid wall are found and the transient flow rates entering the Holdup Volume Tank (HVT) are obtained within a practical computational resource.
Keywords
Free Surface Flow; Containment Floor; Shallow Water Equation; Finite Volume Method;
Citations & Related Records

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