Hi-fidelity characterisation of molten salt - graphite pore interactions through experiments and embedded modelling
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AI plain-English summaryMolten salt reactors—a next-generation nuclear design—depend on graphite components that must stay intact while bathed in hot, radioactive salt for years. But salt can seep into graphite’s microscopic pores, degrading the material, trapping fission products, and altering the reactor’s fuel balance. Researchers do not yet understand how pore shape, size, and connectivity control this infiltration. This project will inject uranium-bearing FLiBe salt into three common nuclear graphite grades (NBG-18, IG-110, and POCO ZXF-5Q), then use X-ray computed tomography, mechanical testing, and high-fidelity modelling to map exactly where the salt goes and how it changes the graphite’s strength. Porosimetry and X-ray photoelectron spectroscopy will reveal the pore structures that resist or invite salt entry. If successful, the work will give reactor designers a clear, data-driven basis for choosing graphite grades that minimise salt infiltration. That could improve the safety, efficiency, and lifespan of molten salt reactors—a technology that promises cleaner, more flexible nuclear power. The research is applied, not fundamental: it directly targets a practical bottleneck in reactor engineering.
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