DOE OSTI · 3011673
Porous Flow Modeling of Axial Gas Redistribution in Fragmented LWR Fuel Rods using MOOSE
Abstract
Understanding how gas axially redistributes within fragmented fuel pellets is crucial for predicting the behavior of Light Water Reactor (LWR) fuel rods, particularly during transient and accidental scenarios. The time scale of this phenomenon plays a fundamental role in determining the progression and hazard of a Loss Of Coolant Accident (LOCA), especially when high burn-up fuel in a severe state of fragmentation is involved. Here, this study presents a Computational Fluid Dynamics (CFD) model developed within the Multiphysics Object-Oriented Simulation Environment (MOOSE) to predict the time-scale of plenum depressurization in Light-Water Reactor (LWR) fuel rods driven by axial gas transport through fragmented pellets. The model examines the effects of incorporating non-linearities in the friction term by comparing the results with experimental data. The experiment employed surrogate fuel rods containing pellets subjected to mechanical and/or thermal loadings to simulate various severity of cracking, and aimed at studying the influence of fuel conditions on axial gas redistribution. The results of this analysis indicate that under certain flow regime conditions - determined by the value of an equivalent Reynolds number - accounting for the non-linear friction term in Navier-Stokes equations guarantees better predictions for the time-scale of plenum depressurization. Also, the model enabled the simulation of the pressure decay by assigning distinct permeability values to each pellet instead of a single uniform value. Multiple simulations were run across all possible pellet position combinations, having each pellet assigned with values of permeability extracted from the experimental data. This allows to quantify the impact of the considering various non-uniform distributions of permeability on the dynamics of axial gas redistribution. The present work findings enhance the understanding of axial gas transport, and provide valuable insights for the integration of a model for predicting the axial gas redistribution during a LOCA scenario into the BISON fuel performance code.
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Genoni, Chiara [Idaho National Laboratory (INL), Idaho Falls, ID (United States); Texas A & M Univ., College Station, TX (United States)] (ORCID:0009000924906898), Gamble, Kyle A. [Idaho National Laboratory (INL), Idaho Falls, ID (United States)] (ORCID:0000000284878077), Pizzocri, Davide [Politecnico di Milano (Italy)] (ORCID:0000000322568409), Cappia, Fabiola [Idaho National Laboratory (INL), Idaho Falls, ID (United States)] (ORCID:0000000273913500), Bergomi, Tommaso [Politecnico di Milano (Italy)], Christen, Chase E. [Idaho National Laboratory (INL), Idaho Falls, ID (United States)] (ORCID:0000000344716505), Kwon, Seongtae [Idaho National Laboratory (INL), Idaho Falls, ID (United States)] (ORCID:0000000160857987). 2025-12-30. Porous Flow Modeling of Axial Gas Redistribution in Fragmented LWR Fuel Rods using MOOSE. https://doi.org/10.1016/j.nucengdes.2025.114677
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