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RARE METALS, SEMICONDUCTORS
Название Electrolyzer design for cerium oxidation
DOI 10.17580/tsm.2015.08.06
Автор Gasanov A. A., Yurasova O. V., Kharlamova T. A., Alaferdov A. F.
Информация об авторе

JSC “Giredmet”, Moscow, Russia:

A. A. Gasanov, Head of Department of Highly Purified Materials, Rare and Rare-Earth Metals, e-mail: A.A.Gasanov@giredmet.ru
O. V. Yurasova, Head of Laboratory
T. A. Kharlamova, Leading Researcher
A. F. Alaferdov, Senior Researcher

Реферат

In industrial practice, cerium is often isolated on the first stages of processing of rare-earth metals in connection with its prevail content in rare-earth raw materials. Separation methods, based on its capability for oxidation to Ce (IV), are widely used for these purposes. Processes of Ce (III) oxidation with its following separation are widely used in industry. Electrochemical method is one of well-known and practically applied Се (III) oxidation methods. Electrochemically oxidized Ce (IV) is very stable, in contrast to the similar one, obtained by chemical method (particularly, oxidized by H2O2, mostly reduced for rather short time). This article shows the analysis of the given electrolyzer designs. There were defined the benefits of diaphragm electrolyzers, offered for Ce (III) oxidation process. Modern Russian model of diaphragm electrolyzer, chosen for researches of cerium electrochemical oxidation process, is detaily described. Information about the materials of electrodes, diaphragm and their configurations is given. Researches, carried out on standard test solutions, have shown the operational stability of unit and high Ce (III) oxidation current efficiency in nitrate solutions. For the four months of unit exploitation, there was defined the stable operation of electrochemical reactor in the given mode with Се (III) oxidation level in nitrate solutions to 98–99% with quantitative current efficiency. Electrical power consumption in optimal conditions is ~0.6 kW/h per 1 kg of Се (IV) oxide.
This work was carried out with co-financing of Ministry of Education and Science of Russian Federation within the agreement No.14.579.21.0049 of August 26, 2014 (unique identifier of application research studies (project) is RFMEFI57914X0049).

Ключевые слова Rare-earth metals, cerium, oxidation, electrolysis, diaphragm, cathode, anode
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