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Mechanistic insights into volatile ruthenium tetroxide formation during evaporation-to-dryness accidents of high-level liquid waste

Yoshida, Naoki; Amano, Yuki ; Yoshida, Ryoichiro ; Ono, Takuya ; Tashiro, Shinsuke ; Yamane, Yuichi 

Volatile ruthenium tetroxide (RuO$$_{4}$$) formed during evaporation-to-dryness accidents (EDA) of high-level liquid waste (HLLW) combines high chemical toxicity with radiotoxicity from isotopes such as $$^{103}$$Ru and $$^{106}$$Ru, making it a primary hazard in nuclear-fuel reprocessing. This study experimentally elucidates the mechanisms governing RuO$$_{4}$$ formation while testing the validity of the pragmatic nitrosyl-ruthenium ([RuNO]) surrogate model, an experimental model that assumes Ru in HLLW exists as [RuNO], and evaluates gaseous Ru release using nitric acid solutions of [RuNO], commonly used in RuO$$_{4}$$ release assessments by comparing it with the behavior of simulated HLLW (s-HLLW). We systematically investigated potential pathways, including oxidation by liquid-phase nitric acid (HNO$$_{3}$$(l)), gas-phase nitric acid (HNO$$_{3}$$(g)), and oxygen (O2); thermal decomposition of [RuNO]; and matrix effects of coexisting nitrates. The results identify oxidation by activated HNO$$_{3}$$(l), oxidation by HNO$$_{3}$$(g) and thermal decomposition of [RuNO] as the principal routes to RuO$$_{4}$$, with HNO$$_{3}$$(g) playing a far more significant role than previously recognized. Crucially, the RuO$$_{4}$$ release profile from s-HLLW differed markedly from that predicted by the [RuNO] surrogate model, demonstrating that this model fails to capture the complex matrix effects and time-dependent chemical changes of Ru species inherent to real HLLW. These findings have significant implications for improving the accuracy of hazard assessments related to RuO$$_{4}$$ release during HLLW EDAs, particularly by highlighting the limitations of commonly used [RuNO] surrogate models.

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