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Kim, Ji Hyun
UNIST Nuclear Innovative Materials Lab.
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Long-term corrosion behavior of borated stainless steel in a simulated spent fuel pool environment

Author(s)
Park, DaehyeonLee, YunjuHam, JunhyukYoo, Seung ChangKim, KiyoungLee, DongheeKim, YongdeogKim, Ji Hyun
Issued Date
2026-03
DOI
10.1016/j.jmrt.2025.12.045
URI
https://scholarworks.unist.ac.kr/handle/201301/89481
Citation
JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, v.41, pp.344 - 362
Abstract
Borated stainless steel (BSS) is widely utilized as a neutron absorber material for criticality control in spent nuclear fuel pools, which use borated water to cool spent nuclear fuel to room temperature. By incorporating boron into SS304, BSS exhibits a higher neutron absorption cross section than other austenitic stainless steels. Boron in BSS has a low solubility in the austenite structure, leading to the formation of a secondary phase, (Fe, Cr)(2)B, upon alloying. Given that BSS is intended for long-term use in spent nuclear fuel pools, it is important to evaluate its long-term integrity. This paper investigates the long-term corrosion behavior of BSS along with its oxide microstructure through an accelerated corrosion experiment simulating spent nuclear fuel pool conditions. The 2-year experiment was conducted at elevated temperatures based on the Arrhenius equation with temperature as a variable. Detailed microstructural analysis employed electron microscopy, energy-dispersive X-ray spectroscopy, electron probe microanalysis, and image analysis. According to the results, upon oxidation, hematite oxide film was formed and shallow, non-propagating incipient localized attack was obserbed on the substrate; the features were typically approximate to 1-3 mu m deep and accounted for <0.1 % of the cross-sectional thickness. Incipient localized attack from the relatively low Cr content in BSS compared to conventional stainless steel. Dissolution of Cr and B was observed from the secondary phase (Fe, Cr)(2)B, indicating that B dissolution is caused by oxidation.
Publisher
ELSEVIER
ISSN
2238-7854
Keyword (Author)
Borated stainless steel (A)Neutron absorber (A)Spent fuel pool (A)Accelerated corrosion experiment (B)Chromium dissolution (C)EPMA (B)
Keyword
OXIDE-FILMDISSOLVED-OXYGENTEMPERATURE304-STAINLESS-STEELOXIDATIONMECHANISMBORONWATER

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