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DOE OSTI · code-175838

Fully Bayesian Analysis With Model Inadequacy Correction For Nuclear Graphite Property Models With Hierarchical Variance Structure

Abstract

Nuclear-grade graphites are extensively utilized in the core designs of various advanced nuclear reactors. Within the reactor environment, graphite is subjected to prolonged exposure to extreme conditions, including high temperatures, radiation, and potentially molten salt and oxygen. Such exposure can induce several degradation mechanisms in graphite, such as nonuniform volumetric strains caused by irradiation and thermal expansion, leading to stresses that may compromise the performance of graphite components. Assessing component integrity, forecasting component performance over the reactor's lifespan, and developing design standards necessitate robust tools for predicting fracture initiation and propagation in graphite structural components within nuclear reactors. This code enables the Bayesian calibration of properties for nuclear-grade graphites. Using a hierarchical Bayesian approach, multiple experimental data sources are combined to develop Gaussian process models for the properties. Using the Kennedy O'Hagan framework, the uncertainties due inadequacies in the model and the inherent spread in the experimental data are quantified.

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BibTeXRIS

Dhulipala, Som Lakshmi NarasimhaLakshmi Narasimha [Idaho National Laboratory (INL), Idaho Falls, ID (United States)] (0000000208014250), Bajpai, Parikshit [Idaho National Laboratory (INL), Idaho Falls, ID (United States)] (000000015778449X), Singh, Gyanender [Idaho National Laboratory (INL), Idaho Falls, ID (United States)] (0000000318284438), Spencer, Benjamin [Idaho National Laboratory (INL), Idaho Falls, ID (United States)] (0000000287744445). 2025-11-26. Fully Bayesian Analysis With Model Inadequacy Correction For Nuclear Graphite Property Models With Hierarchical Variance Structure. https://doi.org/10.11578/dc.20260217.4

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