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Название Analytical review of the foreign publications about the methods of rise of operating parameters of cathode blocks during 1995–2014
DOI 10.17580/cisisr.2017.01.11
Автор R. Yu. Feshchenko, O. O. Erokhina, A. L. Kvanin, D. S. Lutskiy, V. V. Vasilyev
Информация об авторе

St. Petersburg State Mining University (St. Petersburg, Russia):

R. Yu. Feshchenko, Cand. Eng., Assistant of the Chair of Automation of Technological Processes and Production, e-mail: feshchenko.r.yu@mail.com
O. O. Erokhina, Bachelor
D. S. Lutskiy, Cand. Eng., Associate Prof. Of the Chair of General and Physical Chemistry
V. V. Vasilyev, Cand. Eng., Assistant of the Chair of Metallurgy

 

Scientific and Technological Center of “Energoprom” (Moscow, Russia):

A. L. Kvanin, Cand. Phys.-Math., Head of Scientific-Technical Projects

Реферат

Increase of the part of graphitized cathode blocks used in the modern assemblies for production of primary aluminium via electrolytic method is recognized as the main direction of development of this technology. These blocks have a row of indisputable advantages, first of all low electric resistance and high level of electric conductivity. Increased abrasive hearth wear by alumina precipitants during melt motion seems to be the most important problem in operation of such blocks. This wear leads to decrease of service life of an electrolyzer and to increase of cost of manufactured metal. The leading global producers conduct complex works directed on quality improvement of graphitized blocks. These works include a row of scientific directions: rational selection of raw materials, selection of optimal parameters of the technological process, different variants of impregnations etc. Most of researchers agree that rise of density leads to lowering of abrasive wear, and that this effect can be achieved via different ways (first of all by pitch impregnation). Several technical solutions (e.g. creation of variable electric resistance along block length, with lower value close to edges, in the areas with increased wear) have peen confirmed via production testing and are used now successfully at a row of metallurgical works. In Russia graphitized blocks are not used practically. The project of Boguchansky aluminium works (planned to be put into operation in 2016) uses the blocks manufactured on the base of electrocalcinated anthracite with addition of 30 % graphite. Despite of the power engineering potential of Siberian region, such approach is inexpedient, taking into account the fact that high power expenses caused closure of a row of aluminium works in the European part of Russia. Accumulated global experience can be the base for development of science-intensive solutions in the Russian electrode industry and their consequent putting into operation, what in its turn will allow to achieve correspondence between quality of manufactured commercial products and requirements of customers.

The work has been carried out under financial support at the expense of the Educational Grant of the President of Russian Federation for young scientists and post-graduates, realizing prospective scientific researches and developments in the priority directions of modernization of Russian economics.

Ключевые слова Cathode blocks, graphitization, impregnation, abrasive wear, electrode coke, variable resistance, aluminium production, electrolyzer
Библиографический список

1. Sizyakov V. M., Bazhin V. Yu., Vlasov A. A. Status and prospects for growth of the aluminum industry. Metallurgist. 2010. Vol. 54. № 7–8. pp. 409–414.
2. Sorlie M., Oye H. Cathodes in aluminium electrolysis. Aluminium-Verlag. Dusseldorf. 2013. 643 p.
3. Xue J., Zhu J., Song Y. Electrical resistance of graphitic and graphitized cathode materials at elevated temperatures. Light Metals. 2010. pp. 829–834.
4. Vorobev A. G., Timokhin D. V., Bugaenko M. V. The development of the Eurasian economic space based on the model of «economic cross». Non-ferrous Мetals. 2016. № 1, pp. 3–8.
5. Korneev S. I. International review of the market of non-ferrous metals. Tsvetnye metally. 2016. №1. pp. 4–7.
6. Schnittker A., Nawrocki H. Performance of graphitized carbon cathode blocks. Light Metals. 2003. pp. 641–645.
7. Hiltmann F., Patel P., Hyland M. Influence of internal cathode structure on behavior during electrolysis. Part I: properties of graphitic and graphitized material. Light Metals. 2005. pp. 751–756.
8. RF Patent No. 2443623 RU. The method of manufacture of graphitized material with increased abrasive resistance. Published 27.02.2012.
9. Feng G., Naixiang F., Qingren N., Hua H., Liguo H., Yang J. Study on Graphitization of Cathode Carbon Blocks for Aluminum Electrolysis. Light Metals. 2012. pp. 1355–1361
10. Toda S., Wakasa T. Improvement of Abrasion Resistance of Graphitized Cathode Block for Aluminum Reduction Cells. Light Metals. 2003. pp. 647–653.
11. Perruchoud R., Fischer W., Meier M., Mannweiler U. Coke selection criteria for abrasion resistant graphitized cathodes. Light Metals. 2011. pp. 1067–1072.
12. Nazarenko M. Yu., Bazhin V. Yu., Saltykova S. N., Sharikov V. Yu. Change in composition and properties of fuel shales during heat treatment. Coke and chemistry. 2014. Vol. 57. № 10. pp. 413–416

13. Patent 101608320 CN. Graphitized cathode carbon block for aluminum cell. Published 23.12.2009.
14. Patent 1594662 CN. Production process for graphitized cathode. Published 16.03.2005.
15. Patel P., Hyland M., Hiltmann F. Influence of internal cathode structure on behavior during electrolysis. Part III: wear behavior in graphitic materials. Light Metals. 2006. pp. 633–638.
16. Patent 2003056067 WO. Method for the production of cathode blocks. Published 11.11.2004.
17. Patent 2000046426 WO. Graphite cathode for electrolysis of aluminium. Published 10.08.2000.
18. Dreyfus J., Rivoaland L., Lacroix S. Variable Resistivity Cathode against Graphite Erosion. Light Metals. 2004. pp. 603–608
19. Lombard D., Beheregaray T., Feve B., Jolas J. M. Aluminium Pechiney experience with graphitized cathode blocks. Light Metals. 1998. pp. 653–658.
20. Sato Y., Patel P., Lavoie P. Erosion measurements of high density cathode block samples through laboratory electrolysis with rotation. Light Metals. 2010. pp. 817–822.
21. Dreyfus J.-M., Lacroix S. Cathode producer’s proposals for the improvement of the erosion resistance of graphitized cathodes. Light Metals. 1999. pp. 199–207.
22. RF Patent 2377178 RU. The method of manufacture of graphitized products. Published 27.12.2009.
23. Patent № 5501729 US. Pitch based impregnant for carbon and graphite and method. Published 26.03.1996.
24. Patent 2000046427 WO. Impregnated graphite cathode for electrolysis of aluminium. Published 10.08.2000.
25. Patent 100415939 CN. Cathode impregnation method and apparatus. Published 03.09.2008.
26. Wilkening S., Reny P. Erosion rate testing of graphite cathode materials. Light Metals. 2004. pp. 597–602.
27. Paten 5378327 US. Treated carbon cathodes for aluminum production, the process of making thereof and the process of using thereof. Published 03.01.1995.
28. Bazhin V. Yu., Feshchenko R. Yu., Saitov A. V., Kuznetsova E. A. Protection of an aluminum electrolyzer carbon-graphite lining by a lithium intercalation layer. Refractories and Industrial Ceramics. 2014. Vol. 55. № 2. pp. 81–83.

Полный текст статьи Analytical review of the foreign publications about the methods of rise of operating parameters of cathode blocks during 1995–2014
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