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DOE OSTI · 2462691

Mass Optimization of a Multilayered Shield for Transportable Microreactors

Abstract

The ability to easily transport microreactors is a major selling point for deploying microreactors to remote areas. However, this creates a unique shielding challenge, especially when the microreactor is being shipped after irradiation. A traditional reactor configuration utilizes a separate biological shield and pressure vessel to meet radiological shielding and pressure needs. The limited space available for transportable microreactors for both shielding and pressure vessels requires a revised assessment of separating out the biological shield and pressure vessel. To address these concerns, we examine a nuclear-grade sandwich composite (NGSC) that combines the reactor pressure vessel and biological shielding functions into a single component. Through a series of optimization problems for both transportation and operational use cases, the NGSC is able to minimize dose, minimize the vessel cost, and ensure that weight requirements are met for transportation. Initial results show that using a tungsten-tetraboride cermet in the first two layers of a six-layer NGSC provides adequate shielding for both use cases. These results show promise that an NGSC has enough overlap between operational and transportation cases to help reduce the design space for future analysis and assessment.

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BibTeXRIS

Stewart, Ryan Hunter, Bays, Samuel E, Spears, Robert E, Kurt, Efe G, Ougouag, Abderrafi Mohammed-El-Amine, Zabriskie, Adam X, Zelina, Joshua Nicholas. 2024-10-02. Mass Optimization of a Multilayered Shield for Transportable Microreactors. https://doi.org/10.1080/00295639.2024.2403899

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