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Metal science and metallography
Название Features of oxidation of ferritic chromium steels as materials for current collectors of solid oxide fuel cells
Автор O. V. Pikalov, D. V. Matveev, M. N. Levin, N. V. Demeneva
Информация об авторе

RAS Institute of Solid State Physics (Chernogolovka, Russia):

O. V. Pikalov, Post-graduate Student, e-mail: pikalov@issp.ac.ru
D. V. Matveev, Cand. Phys.-Math., Senior Researcher, e-mail: matveev@issp.ac.ru
N. V. Demeneva, Cand. Phys.-Math., Researcher, e-mail: ladyn@issp.ac.ru

Innovation Center “Biryuch”, EFKO Group of Companies (Malobykovo, Russia):

M. N. Levin, Dr. Phys.-Math., General Director, e-mail: levinmn@gmail.com

Реферат

A study of the oxidation features of ferritic chromium steels of 08Kh18Т1, 12Kh17 and AISI 430 grades, considered as current collectors of solid oxide fuel cells (SOFC), has been carried out. The effect of alloying elements on the composition of the formed oxide films, the kinetics of oxidation, and the specific surface resistance of steel was studied during exposure to 800–850 °C in air and a constant current load of 0.5 A/cm2 in contact with the cathode material La0.8Sr0.2MnO3 for 750–4110 h. It is shown that sufficiently high values of resistance are due to the formation of multiphase oxide films with low conductivity on the surface of steels during oxidation. However, it is possible to use these steels with protective coatings, which will prevent the formation of multiphase scale with low adhesion on the surface and, at the same time, ensure high conductivity in contact with the SOFC cathode.
This work was financially supported by the Ministry of Education and Science (Agreement No. 075-15-2019-1714 on the provision of a grant in the form of a subsidy from the Ministry of Education and Science of Russia dated 02.12.2019 “Development of solid oxide fuel cells batteries of an anode-supporting structure for a highly efficient generator of hydrogen energy”. Unique project identifier RFMEFI60819X0279.

Ключевые слова Ferritic chromium steels, oxidation, surface resistivity, cathode, current collectors, interconnectors, solid oxide fuel cell
Библиографический список

1. Pepermans G., Driesen J., Haeseldonckx D., Belmans R., D’haeseleer W. Distributed generation: definition, benefits and issues. Energy Policy. 2006. Vol. 33, Iss. 6. pp. 787–798.
2. Muñoz-Delgado G., Contreras J., Arroyo J. M. Joint Expansion Planning of Distributed Generation and Distribution Networks. IEEE Trans. Pow. Syst. 2015. Vol. 30, Iss. 5. pp. 2579–2590.
3. Bredikhin S. I., Agarkov D. A., Agarkova E. A., Burmistrov I. N., Cherkasov A. M. et al. Aerosol Deposition as a Promising Technique to Fabricating a Thin-film Solid Electrolyte of Solid Oxide Fuel Cells. ECS Transactions. 2019. Vol. 91. pp. 403–413.
4. Agarkova E. A., Agarkov D. A., Burmistrov I. N., Zadorozhnaya O. Yu., Yalovenko D. V. et al. Three-layered membranes for planar solid oxide fuel cells of the electrolyte-supported design: characteristics and applications. Russian Journal of Electrochemistry. 2020. Vol. 56. No. 2. pp. 132–138.
5. Tjaden B., Gandiglio M., Lanzini A., Santarelli M., Järvinen M. Small-Scale Biogas-SOFC Plant: Technical Analysis and Assessment of Different Fuel Reforming Options. Ener. Fuels. 2014. Vol. 28, Iss. 6. pp. 4216–4232.
6. Badur J., Lemanski M., Kowalczyk T., Ziolkowski P., Kornet S. Zerodimensional robust model of an SOFC with internal reforming for hybrid energy cycles. Energy. 2018. Vol. 158. pp. 128–138.
7. Manufacturing Cost Analysis of 1, 5, 10 and 25 kW Fuel Cell Systems for Primary Power and Combined Heat and Power Applications. Prepared by: Battelle Memorial Institute, January 2017.
8. Crofer 22 APU – Material Data Sheet No. 4046. ThyssenKrupp VDM, 2010.
9. Crofer 22 H – Material Data Sheet No. 4050. ThyssenKrupp VDM, 2010.
10. Wright I. G. Metals Handbook, Ninth Edition. ASM Intl. 1987. 1415 p.
11. Demeneva N. V., Matveev D. V., Kharton V. V., Bredikhin S. I. Regularities of high-temperature oxidation of current collectors of solid oxide fuel cells due to diffusion processes in subsurface regions. Russian Journal of Electrochemistry. 2016. Vol. 52, Iss. 7. pp. 678–684.
12. Demeneva N. V. Mass transfer and formation of microstructure of high-temperature protective coatings of current collectors of solid oxide fuel cells: thesis of inauguration of Dissertation … of Candidate of Physical and Mathematical Sciences. Chernogolovka, 2017.

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