Bayesian calibration with summary statistics for the prediction of xenon diffusion in UO2 nuclear fuel
Pieterjan Robbe, David Andersson, Luc Bonnet, Tiernan Casey, Michael W, D Cooper, Christopher Matthews, Khachik Sargsyan, Habib N Najm

TL;DR
This paper develops a Bayesian calibration framework using summary statistics to accurately predict xenon diffusion in UO2 nuclear fuel, integrating diverse experimental data while accounting for uncertainties.
Contribution
It introduces a novel Bayesian calibration method that utilizes summary statistics and surrogate modeling to estimate diffusion parameters in nuclear fuel.
Findings
Calibrated model shows good agreement with experimental data.
The approach effectively incorporates uncertainties from multiple data sources.
The model captures key diffusion trends consistent with established literature.
Abstract
The evolution and release of fission gas impacts the performance of UO2 nuclear fuel. We have created a Bayesian framework to calibrate a novel model for fission gas transport that predicts diffusion rates of uranium and xenon in UO2 under both thermal equilibrium and irradiation conditions. Data sets are taken from historical diffusion, gas release, and thermodynamic experiments. These data sets consist invariably of summary statistics, including a measurement value with an associated uncertainty. Our calibration strategy uses synthetic data sets in order to estimate the parameters in the model, such that the resulting model predictions agree with the reported summary statistics. In doing so, the reported uncertainties are effectively reflected in the inferred uncertain parameters. Furthermore, to keep our approach computationally tractable, we replace the fission gas evolution model…
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Taxonomy
TopicsNuclear Materials and Properties · Nuclear reactor physics and engineering · Radioactive element chemistry and processing
