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Article

MgO/KH2PO4 and Curing Moisture Content in MKPC Matrices to Optimize the Immobilization of Pure Al and Al-Mg Alloys

by
Carla Fernández-García
1,
María Cruz Alonso
1,*,
José María Bastidas
2,
Inés García-Lodeiro
1 and
Raúl Fernández
3
1
Institute of Construction Science “Eduardo Torroja” (IETcc), CSIC, Serrano Galvache 4, 28033 Madrid, Spain
2
National Centre for Metallurgical Research (CENIM), CSIC, Ave. Gregorio Del Amo 8, 28040 Madrid, Spain
3
Department of Geology and Geochemistry, Faculty of Sciences, Autonomous University of Madrid (UAM), 28049 Madrid, Spain
*
Author to whom correspondence should be addressed.
Materials 2024, 17(6), 1263; https://doi.org/10.3390/ma17061263
Submission received: 19 December 2023 / Revised: 8 February 2024 / Accepted: 9 February 2024 / Published: 8 March 2024

Abstract

Magnesium Potassium Phosphate Cements (MKPCs) are considered a good alternative for the immobilization of aluminium radioactive waste. MKPC composition and moisture curing conditions are relevant issues to be evaluated. The corrosion of pure aluminium (A1050) and AlMg alloys (AA5754) with 3.5% of Mg is studied in MKPC systems prepared with different MgO/KH2PO4 (M/P) molar ratios (1, 2, and 3M) and moisture curing conditions (100% Relative Humidity (RH) and isolated in plastic containers (endogenous curing)). The Al corrosion potential (Ecorr) and corrosion kinetic (icorr and Vcorr) are evaluated over 90 days. Additionally, the pore ion evolution, the matrix electrical resistance, the pore structure, and compressive strength are analysed. The corrosion process of Al alloy is affected by the pH and ion content in the pore solution. The pore pH increases from near neutral for the 1M M/P ratio to 9 and 10 for the 2 and 3M M/P ratio, increasing in the same way the corrosion of pure Al (AA1050) and AlMg alloys (AA5754). The effect of Mg content in the alloy (AA5754) becomes more relevant with the increase in the M/P ratio. The presence of phosphate ions in the pore solution inhibits the corrosion process in both Al alloys. The MKPC physicochemical stability improved with the increase in the M/P ratio, higher mechanical strength, and more refined pore structure.
Keywords: magnesium potassium phosphate cement (MKPC); immobilization of Al radioactive waste; corrosion; hydrogen release; pH; pore ion content magnesium potassium phosphate cement (MKPC); immobilization of Al radioactive waste; corrosion; hydrogen release; pH; pore ion content

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MDPI and ACS Style

Fernández-García, C.; Alonso, M.C.; Bastidas, J.M.; García-Lodeiro, I.; Fernández, R. MgO/KH2PO4 and Curing Moisture Content in MKPC Matrices to Optimize the Immobilization of Pure Al and Al-Mg Alloys. Materials 2024, 17, 1263. https://doi.org/10.3390/ma17061263

AMA Style

Fernández-García C, Alonso MC, Bastidas JM, García-Lodeiro I, Fernández R. MgO/KH2PO4 and Curing Moisture Content in MKPC Matrices to Optimize the Immobilization of Pure Al and Al-Mg Alloys. Materials. 2024; 17(6):1263. https://doi.org/10.3390/ma17061263

Chicago/Turabian Style

Fernández-García, Carla, María Cruz Alonso, José María Bastidas, Inés García-Lodeiro, and Raúl Fernández. 2024. "MgO/KH2PO4 and Curing Moisture Content in MKPC Matrices to Optimize the Immobilization of Pure Al and Al-Mg Alloys" Materials 17, no. 6: 1263. https://doi.org/10.3390/ma17061263

APA Style

Fernández-García, C., Alonso, M. C., Bastidas, J. M., García-Lodeiro, I., & Fernández, R. (2024). MgO/KH2PO4 and Curing Moisture Content in MKPC Matrices to Optimize the Immobilization of Pure Al and Al-Mg Alloys. Materials, 17(6), 1263. https://doi.org/10.3390/ma17061263

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