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DOE OSTI · 2472943

FFTF HT9 Cladding Microstructure Characterization

Abstract

The sodium-cooled fast reactor (SFR) is a promising candidate for next generation nuclear reactors, operating at extreme conditions which include high temperatures (>500?C core outlet temperature) and significant neutron damage. High-Cr martensitic HT9 steel is an excellent candidate for SFR cladding and duct material due to its compatibility with liquid sodium, good thermal conductivity, resistance to void swelling, and strong creep rupture strength [1-4].However, the harsh in-core environment of SFRs can cause complex microstructural changes and mechanical property degradation in HT-9. Ensuring the safe use of HT9 cladding for metallic fuel requires both a thorough understanding of its mechanical response to microstructure evolution as well as reliable microstructure-sensitive modeling predictions. Microstructure-sensitive modeling of high temperature creep behavior in HT9 cladding for SFR applications currently lack experimental data to model the phenomena accurately. To fill this need, methods to perform microstructural characterization have been developed and performed on HT9.

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BibTeXRIS

Wang, Yachun, Porter, Douglas L, Zhao, Liang, Nguyen, Bao-Phong Hoang, Rittenhouse, Joshua Eddy, Mauseth, Tanner Jason, Yao, Tiankai. 2024-10-16. FFTF HT9 Cladding Microstructure Characterization. https://www.osti.gov/biblio/2472943

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36 MATERIALS SCIENCE