The Study of Destructible Annealed Anode Paste in the Current CO2

Article Preview

Abstract:

The article is devoted to the study of destructibility of the annealed anode paste of different composition in the CO2 current. It is shown that the destructibility of CO2 current of petroleum coke is much less than that of pitch coke. The comparison of the qualitative characteristics of the anode paste on the basis of pitch coke and petroleum coke revealed the advantage of petroleum coke, due to its low sodium content. The average destructibility of the anode paste on the basis of different grades of cokes in the CO2 current is determined. The conducted semi-industrial tests were in good agreement with the laboratory studies.

You might also be interested in these eBooks

Info:

Periodical:

Solid State Phenomena (Volume 316)

Pages:

699-704

Citation:

Online since:

April 2021

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2021 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] Grinberg I.S., Ragozin L. W. Proizvodstvo alyuminiya v elektrolizerakh s verkhnim tokopodvodom (The aluminium smelting in top-worked pot), MANEB, (2003) 299 p.

Google Scholar

[2] Martynihin V.V., Golovnyh N.V., Polonskiy S.B. Razvitie alyuminievogo proizvodstva v vostochnyh regionah Rossii: ekologo-ekonomicheskie aspekty (The development of aluminum production in the eastern regions of Russia: environmental and economic aspects) // Izvestiya Baykalskogo gosudarstvennogo universiteta (2007) № 6:61-66.

Google Scholar

[3] Gildebrandt E.M., Vershinina E.P., V.K. Frizorger V.K. Kachestvo anodnoy massy v tekhnologii elektroliza alyuminiya s anodom Soderberga (The quality of the anode paste in the technology of electrolysis of aluminum with the anode of Soderberg) // Izvestiya vuzov. Cvetnaya metallurgiya (2014) № 1: 17-20.

DOI: 10.17073/0021-3438-2014-1-17-20

Google Scholar

[4] Sizyakov V. M., Bazhin V. Yu. Tekhnologicheskie i metodologicheskie osnovy polucheniya alyuminiya na moshchnyh alyuminievyh elektrolizerah (Technological and methodological foundations of aluminum production on powerful aluminum electrolyzers) SPb.: Sankt-Peterburgskiy gos. gornyy un-t (2011)128 p.

Google Scholar

[5] Narasimharagan R.K. Problemy energetiki i ohrany okruzhayushchey sredy v alyuminievoy promyshlennosti (Problems of energy and environmental protection in the aluminum industry) // «Alyuminiy Sibiri-2008»: sb. dokladov XIV Mezhdunar. konf. Krasnoyarsk (2008): 390-397.

Google Scholar

[6] Grinberg I.S., Gromov B.S., Spravochnik metallurga. Proizvodstvo alyuminiya I splavovna ego osnove (The guide for a metallurgist. The aluminium smelting and manufacture of the alloys on its basis), MANEB,, (2005).

Google Scholar

[7] Nikolaev I. V., Moskvitin V. I., Fomin B. A., Metallurgiya legkikh metallov (Metallurgy of light metals), Moscow, (1997).

Google Scholar

[8] Vetyukov М. М., Tsyplakov A.M., Elektrometallurgiya alyuminiya I magniya (Aluminum and magnesium electrometallurgy), Moscow, (1987).

Google Scholar

[9] Borisoglebskiy Yu. V., Galevskiy G.V., Metallurgiya alyuminiya (Aluminum metallurgy), Novosibirsk: Nauka, (2000).

Google Scholar

[10] Grinberg I. S., Ragozin L.V., Lanshin V.P., Proizvodstvo anodnoy massy (Manufacturing of anode paste) MANEB,, (2003).

Google Scholar

[11] Yanko E.A., Anody alyuminievykh elektrolizerov (The anodes of aluminium electrolysers), Мoscow, (2001).

Google Scholar

[12] Yanko E.A. Proizvodstvo alyuminiya: Posobiye dlya masterov I rabochikh tsekhov elektroliza alyuminiyevykh zavodov (Aluminium production: a Manual for craftsmen and workers of electrolysis shops of aluminum plants), Saint-Petersburg (2007).

Google Scholar

[13] Terentev V.G., Shkolnikov R.M. Proizvodstvo alyuminiya (Aluminium production) (1998).

Google Scholar

[14] Moskvitin V.I., Nikolaev I.V., Fomin B.A. Metallurgiya legkih metallov (Metallurgy of light metals) M.: Intermet Inzhiniring( 2005) 413 p.

Google Scholar

[15] Alshanskaya A. A. Tekhnologiya degazacii anodnoy massy v processe formirovaniya anoda Soderberga s verhnimtokopodvodom (The technology of degassing the anode paste in the process of forming the Soderberg anode with an overcurrent) // Sb. materialov Vserossiyskoy nauchno-tekh. konf. studentov, aspirantov i molodyh uchѐnyh. MIOC FGOU VPO «SFU». – Achinsk, (2009).

Google Scholar

[16] Grinberg I.S., Terentev V.G., Chalyh V.I. Elektrometallurgiya alyuminiya (Electrometallurgy of aluminum) Irkutsk: Izd-vo IrGTU (2009) 350 p.

Google Scholar

[17] Mineev G.G. Teoriya metallurgicheskih processov (Theory of metallurgical processes) Irkutsk: Izd-vo IrGTU (2010) 524 p.

Google Scholar

[18] Voskoboynikov V.G., Kudrin V.A., Yakushev A.M. Obshchaya metallurgiya (General metallurgy) M.: Akademkniga (2005) 764 p.

Google Scholar

[19] Grjotheim K., Kvande H. Introduction to Aluminums Electrolysis // Dusseldorf Aluminums Verlag (1993) 260 p.

Google Scholar

[20] Kovacs V., Kiss L. Comparative Analysis of the Environmental Impacts of Aluminum Smelting Technologies // Light Metals (2015): 529-534.

DOI: 10.1002/9781119093435.ch88

Google Scholar