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DOE OSTI · 3378289

Surrogates for Valve-Controlled Pipe Flow: Accelerating Nuclear Reactor Design

Abstract

Neural surrogate models are developed to replace expensive steady-state RANS CFD simulations for valve-controlled pipe flow in nuclear reactor design. Using parametric CFD data generated with MOOSE Pronghorn across a range of valve geometry and flow conditions, three approaches are compared: a POD-based reduced-order model, a structured UNet on a cylindrical grid, and unstructured models (DeepONet and BiStride MeshGraphNet) on nondimensionalized point clouds. POD achieves the highest accuracy (99%) with fast inference but requires storing all solution snapshots, while the DeepONet and BSMS-GNN both achieve ~89% accuracy at sub-second inference, with the BSMS-GNN offering superior geometric generalizability. These surrogates enable rapid ranking of candidate valve designs and can warm-start CFD solvers to accelerate convergence, supporting agentic design iteration on the Prometheus platform.

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BibTeXRIS

Krishnan, Anand [Idaho National Laboratory] (ORCID:0009000342292857), Tano Retamales, Mauricio Eduardo [Idaho National Laboratory] (ORCID:0000000334173869), Prince, Zachary M [Idaho National Laboratory], Dhulipala, Som LakshmiNarasimha [Idaho National Laboratory] (ORCID:0000000208014250), Suyderhoud, Peter Anton [Idaho National Laboratory] (ORCID:0009000957296520). 2026-04-27. Surrogates for Valve-Controlled Pipe Flow: Accelerating Nuclear Reactor Design. https://www.osti.gov/biblio/3378289

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