Журналы →  CIS Iron and Steel Review →  2016 →  №2 →  Назад

Название Technology of separation of carbon nanotubes from natural ferriferous manganese catalysts with the aid of agents made of acetylene alcohols
DOI 10.17580/cisisr.2016.02.01
Автор T. I. Yushina, I. O. Krylov, K. S. Popova, V. A. Vinnikov
Информация об авторе

National University of Science and Technology “MISIS”, Moscow, Russia:

T. I. Yushina, Candidate of Engineering Sciences, Professor, Acting Head of the Chair of Mineral and Waste Material Development and Processing, E-mail: yuti62@mail.ru
I. O. Krylov, Candidate of Engineering Sciences, Associate Professor
K. S. Popova, Candidate for a Master’s Degree
V. A. Vinnikov, Doctor of Physical and Mathematical Sciences, Professor, Head of the Chair of Physical Processes of Mining and Geocontrol

Реферат

One of the most promising ways of enhancing value of low-grade manganese (ferriferous manganese) ores is their utilization in cleaning treatment of process gases in the capacity of synthetic scavengers, adsorbents and catalysts, or as a feed stock. It has been found that in the course of high-temperature removal of sulfur-bearing compounds from process gases using low-grade manganese (ferriferous manganese) ores as adsorbing agents, carbon nanotubes are generated on the adsorbent. The use of the natural ferriferous manganese catalyst for cleaning treatment of process gases and for carbon nanotubes production, and the follow-up re-use in purification circuits or in metallurgy allows enhancing profitability and ecological properties of the final product. Searching for new methods to produce low-cost carbon nanotubes is of interest both for applied and basic science. A carbon-catalyst composite obtained in the course of decomposition of carbon-bearing gases with the aid of ferriferous manganese ore at a temperature of 850 °С was analyzed. The catalyst was made of ferriferous manganese ore of Porozhin deposit, which exhibited the highest sorption activity in accordance with the evidence of the previous research findings on the use of manganese (ferriferous manganese) ore in the capacity of a catalyst in production of nano-carbon materials. It was found that samples contained carbon nanotubes after catalytic decomposition of methane. The samples contained single-layer and multilayer carbon nanotubes, and chains of carbon nanotubes. Mass fraction of the carbon phase was 32%. The objective was to qualitatively separate the generated carbon structures and the natural catalyst. Actual separation of carbon nanotubes and catalysts in the world involves grinding, high temperature oxidation owing to different oxidabilities of allotropic forms of carbon, and chemical dissolution of a catalyst in acids. The drawbacks of these methods are irretrievable loss of a catalyst and deterioration of properties of carbon nanotubes. The research accomplished by Ryabov Yu.V. and his fellows revealed high efficiency of carbon separation from fly ash of coal-fired electric power plants by flotation. The collecting agent was kerosene and the foam maker was pine oil and agents T-66 and T-80. The versatility of properties of acetylene alcohols-based agents DMIPEC and DC-80 enabled presuming foam separation of generated carbon nanotubes from the catalyst bottom layer with the use of these agents only (without kerosene). It was found that nonionic acetylene alcohols-based agents DMIPEC and DC-80 acted as efficient foaming and collecting agents both in flotation of nonferrous metals and carbon-bearing materials of coking coal and carbon nanomaterials. This article proposes a method of foam separation of carbon nanotubes, synthesized with the aid of natural ferriferous manganese ore catalyst, into flotation froth. From the test data, the best yield of carbon nanotubes is obtained with acetylene alcohols-based agent DC-80: the recovery in carbon concentrate reaches 80–90%. On the strength of the testing results, the technology of separation of carbon nanotubes from natural ferriferous manganese catalysts with the use of agents made of acetylene alcohols has been developed. This technology allows extraction of carbon nanotubes in concentrate in the form of powder intended for the subsequent use in modification of composite materials with a view to improving their useful quality and extending operational life of modernized production. Also, carbon concentrate can be used in agglomeration and blending of crushed waste manganese ore for production of ferromanganese. This factor, in is turn, will reduce the cost of ferromanganese.

The study has been carried in the framework of “Conducting scientific and research works (fundamental and applied scientific investigations and experimental researches) No. 816 of the target No. 2014/113 for execution of the state works in the field of scientific activity in the framework of the basic part of the State Target.

The authors express their deep gratitude to Malyshev O. A and Shchelkunov S. A., Innovation Resource, Moscow, for the chemical agents provided.

Ключевые слова Manganese (ferriferous manganese) ore, hydrogen sulfide, adsorbents, syngas, carbon nanotubes, acetylene alcohols, foaming agent, flotation
Библиографический список

1. Krylov I. O., Lugovskaya I. G., Zachinyaev V. Ya., Voevodin Yu. A. et al. Eksperimentalnaya otrabotka tekhnicheskikh resheniy po primeneniyu prirodnykh vysokotemperaturnykh khemosorbentov serovodoroda v krupnomasshtabnykh parogazovykh ustanovkakh s gazifikatsiey uglya (Experimental working of the technical solutions in the field of application of natural hightemperature chemosorbents of hydrogen sulfide in large-scale steam-gas units with coal gasification). Moscow : VIMS Report. 2008. 75 p.
2. Epikhin A. N., Suchkov S. I., Somov A. A., Krylov I. O., Lugovskaya I. G. Ochistka toplivnykh gazov ot serovodoroda prirodnymi margantsevymi sorbentami pri vysokikh temperaturakh (Cleaning of fuel gases by natural manganese adsorbents at high temperature with hydrogen sulfide removal). III Annual conference “Fuel and ecology 2010”. Collection of lectures. Moscow : 2010. pp. 41–44.
3. Epikhin A. N., Suchkov S. I., Somov A. A., Kry lov I. O., Lugovskaya I. G. Tverdyi sorbent serovodoroda na osnove oksidnykh soedineniy margantsa (Solid adsorbent of hydrogen sulfide on the base of manganese oxide compounds). Patent RF No. 2381832. Published in 2010.
4. Strokov A. A., Epikhin A. N., Ugnachev V. I., Timashkov K. V. Issledovanie vysokotemperaturnoy seroochistki sintez-gaza prirodnoy zhelezomargantsevoy rudoy v kipyashchem sloe (Examination of high-temperature desulphurization of synthesis gas by natural ferromanganese ore in a fluidized bed). Energetik = Power engineer. 2012. № 11. pp. 39–41.
5. Odom T. W. Structure and Electronic Properties of Carbon Nanotubes. J. Phys. Chem. B. 2000. Vol. 104. No. 13. P. 2794–2809.
6. Rakov E. G. Nanotrubki-rekordsmeny (Nanotubes champions). Khimiya I zhizn = Chemistry and life. 2016. No. 1.
7. Lushnikova A. A., Sokovikova M. A., Pudov I. A., Yakovlev G. I., Pervushin G. N., Korzhenko A. Formirovanie struktury i svoistv beto nov, modofitsirovannykh dispersnymi dobavkami (Forming the structure and properties of concretes modified by dispersed additives). Vestnik YuUrGU = Bulletin of YuUrGU. 2011. № 16. pp. 30–33.
8. Muhammad Musaddique Ali Rafique, Javed Iqbal. Production of Carbon Nanotubes by Different Routes — A Review. Journal of Encapsulation and Adsorption Sciences, 2011. No. 1. pp. 29–34.
9. Polushin S. G., Evlampieva N. P., Ryumtsev E. I. Sposob vydeleniya uglerodnykh nanotrubok iz uglerodsoderzhashchego materiala (The method of extraction of carbon nanotubes from carboncontaining material). Patent RF No. 2239673 D01F9/12. Published 10.11.2004.
10. MacKenzie K., Dunens O., Harris A.T. A review of carbon nanotube purification by microwave assisted acid digestion. Separation and Purification Technology. 2009. Vol. 66. pp. 209–222
11. Liangti Qu, Kyung Min Lee, Liming Dai. Functionalization and application of carbon nanotubes. Carbon nanotechnology. Elsevier. 2006. Сh. 7. pp. 155–234.
12. Shchelkunov S. A., Malishev O. A., Yushina T. I., Dunaeva V. N. Flotation properties of additional collectors, foaming agents based on acetylenic alcohols. Non-ferrous Metals. 2015. № 2. pp. 3–10.
13. Sabanova M. N., Gusev A. A., Shchelkunov S. A., Malishev O. A. Rezultaty ispolzovaniya reagenta “DMIPEK” pri flotatsionnom obogashchenii mednykh i medno-tsinkovykh rud (The results of usage of “DMIPER” reactant in flotation concentration of copper and copper-zinc ores). Obogashchenie rud = Mineral processing. 2012. № 5. pp. 33–34.
14. Ryabov Yu. V., Delitsyn L. M., Vlasov A. S., Borodina T. I. Flotatsiya ugleroda iz zoly unosa Kashirskoy GRES (Carbon flotation from furnace dust at Kashira state regional power station). Obogashchenie rud = Mineral processing. 2013. № 4. pp. 35–39.
15. Kurkov A. V., Pastukhova I. V. Novye podkhody dlya vybora flotatsionnykh reagentov dlya obogashcheniya kompleksnykh rud slozhnogo sostava (New approaches for choice of flotation reactants for beneficiation of complex ores with complicated composition). Proceedings of International meeting “Plaksinskie chteniya”. Novye tekhnologii obogashcjeniya i kompleksnoy pererabotki trudnoobogatitelnogo prirodnogo i tekhnogennogo mineralnogo syrya (New technologies for beneficiation and complex processing of hard-cleaning natural and man-caused mineral raw materials). Verkhnyaya Pyshma. 2011. pp. 33–36.
16. Krylov I. O., Yudhina T. I., Epikhin A. N., Strokov A. A. Ras shirene resursnoy bazy marganetssoderzhashchego syrya okislennogo tipa v teploenergetike i proizvodstve nanomaterialov (Widening of resource base of manganese-containing raw material based on usage of oxydized-type ores in power engineering and fabrication of nanomaterials). Gornyi zhurnal = Mining journal. 2014. № 12. pp. 70–73.

Полный текст статьи Technology of separation of carbon nanotubes from natural ferriferous manganese catalysts with the aid of agents made of acetylene alcohols
Назад