DOE OSTI · 3374533
Acceleration of Thermochemistry Solves in MOOSE and Pronghorn
Abstract
This work focuses on the development and implementation of strategies to accelerate thermochemical calculations within MOOSE-based multiphysics simulations, particularly for applications in MSRs. We highlight the inherent complexity of nuclear materials, which require a multiscale approach to accurately model their behavior across various physical domains, including mechanical, chemical, and thermal phenomena. Thermochemical equilibrium calculations are crucial for predicting material properties and enhancing the fidelity of these simulations. The integration of Thermochimica, a Gibbs energy minimizer, into MOOSE allows for the direct minimization of Gibbs energy at every point on the mesh. However, the computational cost of such integration is significant. To address this, we explored acceleration strategies such as multi-threading support and the use of a thermodynamic ValueCache to reduce redundant calculations. Additionally, we investigated modifications to Thermochimica to enable phase constraints and improve its coupling with phase-field models, which are essential for simulating microstructural evolution and corrosion in MSR. These efforts aim to optimize the computational efficiency and accuracy of multiphysics simulations, thereby supporting the development of reliable and efficient nuclear materials for next-generation reactor technologies.
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Bajpai, Parikshit [Idaho National Laboratory (INL), Idaho Falls, ID (United States)] (ORCID:000000015778449X), Bhave, Chaitanya Vivek [Idaho National Laboratory (INL), Idaho Falls, ID (United States)], Schwen, Daniel [Idaho National Laboratory (INL), Idaho Falls, ID (United States)] (ORCID:0000000289584748). 2025-08-31. Acceleration of Thermochemistry Solves in MOOSE and Pronghorn. https://doi.org/10.2172/3374533
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