Study of the Stability of Aluminophosphate Glasses–Matrices for Immobilization of Radioactive Waste

Liquid radioactive wastes of the reprocessing of spent nuclear fuel are included in a glassy Na–Al–P matrix for subsequent placement in underground storage. More than 6200 tons of such wastes have already accumulated on PO Mayak (Chelyabinsk region), and the total amount of waste by 2020 is estimate...

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Published inDoklady earth sciences Vol. 482; no. 2; pp. 1349 - 1353
Main Authors Aleksandrova, E. V., Malkovsky, V. I., Yudintsev, S. V.
Format Journal Article
LanguageEnglish
Published Moscow Pleiades Publishing 01.10.2018
Springer Nature B.V
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Abstract Liquid radioactive wastes of the reprocessing of spent nuclear fuel are included in a glassy Na–Al–P matrix for subsequent placement in underground storage. More than 6200 tons of such wastes have already accumulated on PO Mayak (Chelyabinsk region), and the total amount of waste by 2020 is estimated at 12000 tons. The stability of the glass matrix in underground water depends on the change in its phase composition due to heating during the decay of radionuclides. This process is accelerated by the catalytic effect of water vapor. Before the encapsulation, a small amount of water enters into the package with the waste as wet air. After the corrosion of the package in a repository, the destruction of the glass matrix in contact with the heated vapor will be accelerated: the hydration of the glass followed by its crystallization occurs. This phenomenon has a negative effect on the ability of the matrix to hold radionuclides under its subsequent contact with water, which should be taken into account in the long-term performance assessment of the underground repository.
AbstractList Liquid radioactive wastes of the reprocessing of spent nuclear fuel are included in a glassy Na–Al–P matrix for subsequent placement in underground storage. More than 6200 tons of such wastes have already accumulated on PO Mayak (Chelyabinsk region), and the total amount of waste by 2020 is estimated at 12000 tons. The stability of the glass matrix in underground water depends on the change in its phase composition due to heating during the decay of radionuclides. This process is accelerated by the catalytic effect of water vapor. Before the encapsulation, a small amount of water enters into the package with the waste as wet air. After the corrosion of the package in a repository, the destruction of the glass matrix in contact with the heated vapor will be accelerated: the hydration of the glass followed by its crystallization occurs. This phenomenon has a negative effect on the ability of the matrix to hold radionuclides under its subsequent contact with water, which should be taken into account in the long-term performance assessment of the underground repository.
Author Yudintsev, S. V.
Aleksandrova, E. V.
Malkovsky, V. I.
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CitedBy_id crossref_primary_10_1021_acs_jpcc_0c10723
crossref_primary_10_1111_jace_19287
crossref_primary_10_1007_s10967_024_09367_z
crossref_primary_10_1021_acsestengg_1c00184
crossref_primary_10_1134_S0020168519080119
crossref_primary_10_1134_S1028334X21020100
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Snippet Liquid radioactive wastes of the reprocessing of spent nuclear fuel are included in a glassy Na–Al–P matrix for subsequent placement in underground storage....
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StartPage 1349
SubjectTerms Aluminum phosphate
Catalysis
Corrosion
Crystallization
Earth and Environmental Science
Earth Sciences
Encapsulation
Geochemistry
Glass
Heating
Immobilization
Liquid wastes
Moisture content
Nuclear fuel reprocessing
Performance assessment
Performance testing
Phase composition
Phase transitions
Radioactive wastes
Radioisotopes
Radionuclide kinetics
Spent nuclear fuels
Stability
Underground storage
Water content
Water vapor
Water vapour
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Title Study of the Stability of Aluminophosphate Glasses–Matrices for Immobilization of Radioactive Waste
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