Publication:
The rationale for opting for cement-based materials as an engineered barrier in a geological disposal facility for radioactive waste

Дата
2026
Авторы
Tyupina, E. A.
Kozlov, P. P.
Boldyrev, K. A.
Krupskaya, V. V.
Journal Title
Nuclear Energy and Technology (NUCET)
Journal ISSN
Volume Title
Nuclear Energy and Technology (NUCET)
Издатель
НИЯУ МИФИ
Научные группы
Организационные подразделения
Выпуск журнала
Выпуск журнала
Nuclear Energy and Technology
2026 -12 - 2
Аннотация
This paper provides experimental justification for selecting cement-based materials for engineered safety barriers (ESB) in geological disposal facilities (GDF) for radioactive waste. The long-term performance of three materials — Ordinary Portland Cement Concrete (OPCC), Calcium Aluminate Cement Concrete (CACC), and Nirex Reference Vault Backfill (NRVB) —was comparatively analyzed under conditions simulating groundwater impact in a crystalline rock massif. A one-year filtration experiment was conducted using synthetic groundwater at elevated pressure. The evaluation included comprehensive assessment of phase composition evolution, mechanical strength, hydraulic permeability, and chemical/electrochemical parameters of the interacting liquid phase. Results demonstrated that OPCC maintained increased content of strengthening phases (C-S-H, ettringite), enhanced mechanical strength exceeding the required minimum of 7.5 MPa, and consistently low hydraulic permeability (~10-12 m/s), meeting ESB criteria for contact with bentonite buffer. The pH of its filtrate remained below 11.5, minimizing alkaline degradation risks for bentonite. In contrast, NRVB exhibited complete dissolution of C-S-H and portlandite, resulting in significant strength reduction and high hydraulic permeability, making it unsuitable for bentonite buffer contact. For aluminate concrete, cross-reaction of metastable phase CAH10 into less dense C3AH6 caused substantial strength decrease and increased hydraulic permeability exceeding maximum permissible values (10-10 m/s), limiting its GDF application. Based on these findings, Ordinary Portland Cement Concrete emerges as the preferred material for ESB construction in GDF. These results establish foundation for subsequent geochemical modeling of long-term cement barrier evolution.
Описание
Ключевые слова
Phase composition , Hydraulic permeability , Compressive strength , Engineered barrier , Geological disposal facility , Radioactive waste , Concrete
Цитирование
Tyupina EA, Kozlov PP, Boldyrev KA, Krupskaya VV (2026) The rationale for opting for cement-based materials as an engineered barrier in a geological disposal facility for radioactive waste. Nuclear Energy and Technology 12(2): 85–95. https://doi. org/10.3897/nucet.12.191338
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