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Physical Chemistry and Technology of Alkaline Liquid-Metal Coolant: A Retrospective-Perspective Look

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The results of studies on the physical chemistry, mass transfer, and technology of alkali liquid-metal coolant are reported. The state of the coolant is determined by the interaction coolant-impurities-structural materials- protective gas. The impurity sources and their intensity were determined: sodium and sodium-potassium alloy – oxygen, hydrogen (tritium), carbon, products of corrosion of structural materials, nitrogen, and the protective gas, lithium- nitrogen. The following data were obtained on the impurities in the coolant: form, equilibrium concentration, solubility, reaction kinetics, and mechanisms of heterogeneous and homogeneous mass transfer. It was shown that the required concentration of the impurities in sodium and the sodium-potassium alloy guaranteeing the design-basis parameters and a low rate of corrosion of the structural materials is achieved on purification by means of cold traps. Deeper purification of coolants in high temperature NPF intended for use in space is achieved by means of getters (hot traps). The behavior of tritium and hydrogen in the sodium loops in NPP with fast reactors was studied. A new combined system is proposed for purification from impurities in high-temperature NPF for hydrogen production at sodium temperature ~900°C.

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References

  1. A. D. Efanov, F. A. Kozlov, I. Rachkov, et al., “Scientific School of SSC RF – IPPE on heat-and-mass transfer, physical chemistry, and technology of heat-transport media in power systems,” in: Results of Scientific and Technical Activities of the Institute of Nuclear Reactors and Thermal Physics for 2014, A. P. Sorokin et al. (eds.), IPPE, Obninsk (2015), pp. 24–51.

  2. F. A. Kozlov (ed.), L. G. Volchkov, E. K. Kuznetsov, and V. V. Matyukhin, Liquid Metal Coolants for Nuclear Power Facilities. Purification from Impurities and Their Control, Energoatomizdat, Moscow (1983).

  3. V. I. Subbotin, M. N. Arnol’dov, F. A. Kozlov, and A. L. Shimkevich, “Liquid-metal coolants for nuclear power,” At. Energ., 92, No. 1, 31–42 (2002); Atomic Energy, 92, No. 1, 29–40 (2002).

  4. V. I. Subbotin, M. N. Arnol’dov, M. N. Ivanovskii, et al., Lithium, IzdAT, Moscow (1999).

    Google Scholar 

  5. F. A. Kozlov, V. V. Alekseev, and A. P. Sorokin, “Development of sodium coolant technology for fast reactors,” At. Energ., 116, No. 4, 228–234 (2014); Atomic Energy, 116, No. 4, 278–284 (2014).

  6. V. V. Zotov, V. A. Ivanov, O. V. Starkov, and N. D. Kraev, Corrosion of Structural Materials in Liquid Alkali Metals, B. A. Nevzorov (ed.), Atomizdat, Moscow (1977).

  7. V. V. Alekseev, F. A. Kozlov, A. P. Sorokin, et al., “Mass transfer of corrosion products and corrosion of steel in sodium at high hydrogen concentrations,” Teploenergetika, No. 10, 72–80 (2015); Thermal Eng., 62, No. 10, 757–765 (2015).

  8. V. V. Alekseev, A. D. Efanov, F. A. Kozlov, and A. P. Sorokin, “Thermohydraulics, physical chemistry, and technology at nuclear power plants with sodium-cooled fast reactors,” Teploenergetika, No. 12, 2–9 (2007).

  9. F. A. Kozlov, A. P. Sorokin, and M. A. Konovalov, “Sodium purification systems for nuclear power plants with fast reactors: retrospective-perspective look,” Izv. Vyssh. Ucheb. Zaved. Yad. Energet., No. 3, 5–19 (2015).

  10. V. V. Alekseev, Yu. P. Kovalev, S. G. Kalyakin, et al., “Purification systems for nuclear power plants with the BN-1200 reactor,” Teploenergetika, No. 5, 1–12 (2013).

  11. F. A. Kozlov, S. G. Kalyakin, A. P. Sorokin, et al., “Features of the technology of purification of high-temperature sodium coolant from impurities in a fast reactor for the production of hydrogen and other innovative applications,” Izv. Vyssh. Uchebn. Zaved. Yad. Energet., No. 4, 114–124 (2016).

  12. F. A. Kozlov, M. A. Konovalov, and A. P. Sorokin, “Purification of liquid metal systems with sodium coolant from oxygen using getters,” Teploenergetika, No. 5, 63–69 (2016); Thermal Eng., 63, No. 5, 367–373 (2016).

  13. Yu. E. Bagdasarov, F. A. Kozlov, and A. S. Kruglov, “History of the engineering and scientific-technical contribution of BR-5 and BR-10 reactors to the development of fast sodium-cooled reactors,” At. Energ., 106, No. 3, 134–140 (2009); Atomic Energy, 106, No. 3, 168–174 (2009).

  14. Yu. V. Chechetkin, V. D. Kizin, and V. I. Polyakov, Radiation Safety of Nuclear Power Plants with a Fast Reactor and Sodium Coolant, Energoatomizdat, Moscow (1983).

    Google Scholar 

  15. V. A. Blokhin, V. V. Borisov, A. A. Kamaev, et al., “Sensors for in-reactor monitoring of hydrogen and oxygen in sodium,” Vopr. At. Nauki Tekhn. Ser. Yad.-Reakt. Konst., No. 4, 3–12 (2017).

  16. V. I. Rachkov, M. N. Arnoldov, A. D. Efanov, et al., “Use of liquid metals in nuclear, thermonuclear power and other innovative technologies,” Teploenergetika, No. 5, 20–30 (2014).

  17. V. M. Poplavsky, A. D. Efanov, F. A. Kozlov, et al., “Liquid metal coolants technology for fast reactors,” J. Mater. Sci. Eng., 1, No. 7, 913–928 (2011).

    Google Scholar 

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Correspondence to A. P. Sorokin.

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Translated from Atomnaya Énergiya, Vol. 128, No. 4, pp. 190–197, April, 2020.

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Alekseev, V.V., Kuzina, Y.A. & Sorokin, A.P. Physical Chemistry and Technology of Alkaline Liquid-Metal Coolant: A Retrospective-Perspective Look. At Energy 128, 204–210 (2020). https://doi.org/10.1007/s10512-020-00678-4

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  • DOI: https://doi.org/10.1007/s10512-020-00678-4

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