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volume 13 issue 15 pages 3789

Optimization of the solidification method of high-levelwaste for increasing the thermal stability of the magnesium potassium phosphate compound

Publication typeJournal Article
Publication date2020-07-23
scimago Q1
wos Q3
SJR0.713
CiteScore7.3
Impact factor3.2
ISSN19961073
Electrical and Electronic Engineering
Energy Engineering and Power Technology
Renewable Energy, Sustainability and the Environment
Control and Optimization
Engineering (miscellaneous)
Energy (miscellaneous)
Abstract

The key task in the solidification of high-level waste (HLW) into a magnesium potassium phosphate (MPP) compound is the immobilization of mobile cesium isotopes, the activity of which provides the main contribution to the total HLW activity. In addition, the obtained compound containing heat-generating radionuclides can be significantly heated, which increases the necessity of its thermal stability. The current work is aimed at assessing the impact of various methodological approaches to HLW solidification on the thermal stability of the MPP compound, which is evaluated by the mechanical strength of the compound and its resistance to cesium leaching. High-salt surrogate HLW solution (S-HLW) used in the investigation was prepared for solidification by adding sorbents of various types binding at least 93% of 137Cs: ferrocyanide K-Ni (FKN), natural zeolite (NZ), synthetic zeolite Na-mordenite (MOR), and silicotungstic acid (STA). Prepared S-HLW was solidified into the MPP compound. Wollastonite (W) and NZ as fillers were added to the compound composition in the case of using FKN and STA, respectively. It was found that heat treatment up to 450 °C of the compound containing FKN and W (MPP-FKN-W) almost did not affect its compressive strength (about 12–19 МPa), and it led to a decrease of high compressive strength (40–50 MPa) of the compounds containing NZ, MOR, and STA (MPP-NZ, MPP-MOR, and MPP-STA-NZ, respectively) by an average of 2–3 times. It was shown that the differential leaching rate of 137Cs on the 28th day from MPP-FKN-W after heating to 250 °C was 5.3 × 10−6 g/(cm2∙day), however, at a higher temperature, it increased by 20 and more times. The differential leaching rate of 137Cs from MPP-NZ, MPP-MOR, and MPP-STA-NZ had values of (2.9–11) × 10−5 g/(cm2∙day), while the dependence on the heat treatment temperature of the compound was negligible.

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Kulikova A. A. et al. Optimization of the solidification method of high-levelwaste for increasing the thermal stability of the magnesium potassium phosphate compound // Energies. 2020. Vol. 13. No. 15. p. 3789.
GOST all authors (up to 50) Copy
Kulikova A. A., Danilov S. S., Belova K. Yu., Rodionova A. A., Vinokurov S. E. Optimization of the solidification method of high-levelwaste for increasing the thermal stability of the magnesium potassium phosphate compound // Energies. 2020. Vol. 13. No. 15. p. 3789.
RIS |
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RIS Copy
TY - JOUR
DO - 10.3390/en13153789
UR - https://www.mdpi.com/1996-1073/13/15/3789
TI - Optimization of the solidification method of high-levelwaste for increasing the thermal stability of the magnesium potassium phosphate compound
T2 - Energies
AU - Kulikova, Alexandra A.
AU - Danilov, Sergey S
AU - Belova, Kseniya Yu
AU - Rodionova, Anastasiya A
AU - Vinokurov, Sergey E
PY - 2020
DA - 2020/07/23
PB - MDPI
SP - 3789
IS - 15
VL - 13
SN - 1996-1073
ER -
BibTex |
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BibTex (up to 50 authors) Copy
@article{2020_Kulikova,
author = {Alexandra A. Kulikova and Sergey S Danilov and Kseniya Yu Belova and Anastasiya A Rodionova and Sergey E Vinokurov},
title = {Optimization of the solidification method of high-levelwaste for increasing the thermal stability of the magnesium potassium phosphate compound},
journal = {Energies},
year = {2020},
volume = {13},
publisher = {MDPI},
month = {jul},
url = {https://www.mdpi.com/1996-1073/13/15/3789},
number = {15},
pages = {3789},
doi = {10.3390/en13153789}
}
MLA
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MLA Copy
Kulikova, Alexandra A., et al. “Optimization of the solidification method of high-levelwaste for increasing the thermal stability of the magnesium potassium phosphate compound.” Energies, vol. 13, no. 15, Jul. 2020, p. 3789. https://www.mdpi.com/1996-1073/13/15/3789.