Predicting zeolites' stability during the corrosion of nuclear waste immobilization glasses: Comparison with glass corrosion experiments
Creators
- 1. Laboratory for the Chemistry of Construction Materials (LC2), Department of Civil and Environmental Engineering, University of California, Los Angeles, CA 90095 (United States)
- 2. Institute for Carbon Management, University of California, Los Angeles, CA 90095 (United States)
- 3. Department of Chemical and Biomolecular Engineering, University of California, Los Angeles, CA 90095 (United States)
- 4. Pacific Northwest National Laboratory, Energy and Environment Directorate, P.O. Box 999, Richland, WA 99352 (United States)
- 5. Department of Materials Science and Engineering, University of California, Los Angeles, CA 90095 (United States)
- 6. California Nanosystems Institute (CNSI), University of California, Los Angeles, CA 90095 (United States)
- 7. Physics of AmoRphous and Inorganic Solids Laboratory (PARISlab), Department of Civil and Environmental Engineering, University of California, Los Angeles, CA 90095 (United States)
Description
During the long-term corrosion of nuclear waste glasses under nuclear waste disposal conditions, the precipitation of zeolitic phases has been linked to a delayed acceleration in glass corrosion (known as "Stage III"). Hence, predicting the thermodynamic propensity for zeolites to form upon the dissolution of nuclear waste glasses is key to ensure their long-term performance. Here, we compile a unified, internally-consistent thermodynamic database "clay20" to estimate the stability of clay and feldspar phases relevant to nuclear waste immobilization glasses, including beidellite(Mg, Ca, Na, K), kaolinite, montmorillonite(Mg, Ca, Na, K), nontronite(Mg, Ca, Na, K), saponite(Ca, Na, K), and albite. Based on this, we report a geochemical modeling method allowing us to predict the stability of secondary phases (including zeolites, calcium–silicate–hydrate gels, and clays) upon the dissolution of nuclear waste immobilization glasses. We show that this approach offers a realistic description of the stability of the secondary phases forming during the dissolution of two archetypical model nuclear glasses (namely, the International Simple Glass, ISG, and WVUTh-203) under conditions relevant to nuclear waste disposal (T = 90 °C, p = 1 bar) as a function of pH. We find that the formation of silica and clay secondary phases is thermodynamically favored at low pH (pH < 10), whereas, in contrast, zeolite (analcime) and calcium–silicate–hydrate phases are favored at high pH (pH > 10.5). This suggests that thermodynamics (i.e., not solely kinetics) might play a key role in determining the range of solution pH wherein stage III corrosion may occur, i.e., when zeolite formation is favored.
Availability note (English)
Available from http://dx.doi.org/10.1016/j.jnucmat.2021.152813Additional details
Identifiers
- DOI
- 10.1016/j.jnucmat.2021.152813;
- PII
- S0022311521000362;
Publishing Information
- Journal Title
- Journal of Nuclear Materials
- Journal Volume
- 547
- Journal Page Range
- vp.
- ISSN
- 0022-3115
- CODEN
- JNUMAM
INIS
- Country of Publication
- Netherlands
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 54019834
- Subject category
- S12: MANAGEMENT OF RADIOACTIVE WASTES, AND NON-RADIOACTIVE WASTES FROM NUCLEAR FACILITIES; S38: RADIATION CHEMISTRY, RADIOCHEMISTRY AND NUCLEAR CHEMISTRY;
- Descriptors DEI
- CORROSION; DISSOLUTION; FELDSPARS; GELS; GEOCHEMISTRY; GLASS; HYDRATES; KAOLINITE; KINETICS; MONTMORILLONITE; NUCLEAR MODELS; PH VALUE; PRECIPITATION; RADIOACTIVE WASTE DISPOSAL; RADIOACTIVE WASTES; SILICA; SILICATES; THERMODYNAMICS; ZEOLITES
- Descriptors DEC
- CHEMICAL REACTIONS; CHEMISTRY; CLAYS; COLLOIDS; DISPERSIONS; INORGANIC ION EXCHANGERS; ION EXCHANGE MATERIALS; MANAGEMENT; MATERIALS; MATHEMATICAL MODELS; MINERALS; OXIDE MINERALS; OXYGEN COMPOUNDS; RADIOACTIVE MATERIALS; RADIOACTIVE WASTE MANAGEMENT; SEPARATION PROCESSES; SILICATE MINERALS; SILICON COMPOUNDS; WASTE DISPOSAL; WASTE MANAGEMENT; WASTES
Optional Information
- Copyright
- Copyright (c) 2021 Elsevier B.V. All rights reserved.