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DOE OSTI · 3687301

A Kinetic Model of the Long-Term Corrosion of Glass-Ceramic Materials

Abstract

Multiphase waste forms show promise for increased waste loading and for the ability to dispose of contaminated solid and particulate waste through direct densification. However, achieving predictive capability for long-term durability of multiphase waste forms, and thus assessing their possible deployment, requires expanding the current, limited knowledge base. Here, we describe the development of a corrosion model of a two-phase waste form consisting of crystals of known volume fraction embedded in a glass matrix. This model accounts for the dissolution of both the crystalline and glass phases as well as the hydration of the glass phase through an ion exchange reaction. Because of the large difference in solubility between the two phases, the reactive surface of the crystalline phase is a function of the extent of dissolution of the glass phase in this model. Model parameterization was performed using corrosion data, such as from single-pass flow-through tests, for the individual phases. The parameterized corrosion model was evaluated against static dissolution test data for a glass-ceramic multiphase waste form. This evaluation demonstrated the model’s ability to reproduce the time-dependent release of key tracers of glass and crystalline phase dissolution. Hence, the development of a kinetic model provides a pathway for long-term durability predictions and thus the use of multiphase waste forms in nuclear cleanup missions.

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BibTeXRIS

Kerisit, Sebastien N., Parruzot, Benjamin P. (ORCID:0000000228416660), Neeway, James J. (ORCID:0000000170468408), Sutton, Phillip D., Gregg, Daniel, Asmussen, Robert M. (ORCID:0000000159777728), Smith, Gary L. (ORCID:0009000940613059). 2026-04-09. A Kinetic Model of the Long-Term Corrosion of Glass-Ceramic Materials. https://doi.org/10.1016/j.jnucmat.2026.156655

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