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PROCESSING AND COMPLEX USAGE OF MINERAL RAW MATERIALS
Название Prospects of water use reduction in coal preparation
DOI 10.17580/gzh.2016.05.15
Автор Arsentev V. A., Vaisberg L. A., Ustinov I. D., Gerasimov A. M.
Информация об авторе

Mekhanobr Tekhnika Research and Engineering Corporation:

V. A. Arsentev, Director for R&D, Doctor of Engineering Sciences
L. A. Vaisberg, Research Manager, Corresponding Member of the Russian Academy of Sciences
I. D. Ustinov, Marketing Director, Doctor of Chemical Sciences
A. M. Gerasimov, Researcher, Candidate of Chemical Sciences, gornyi@mtspb.com

Реферат

High-ash coal preparation employs mainly “wet” methods with water flow rate of 5–10 t per 1 t of coal. Recycling water supply lowers “fresh” water demand but it is still required to pump considerable volumes of water slurries, which needs much power. On the other hand, dry preparation of low-grade coal using modern technologies is low efficient. This study focuses on the supposition that it is expedient to precede dry preparation of high-ash coal by thermochemical treatment stage and, then, to employ physicomechanical methods aimed to produce low-ash high-energy product. The use of the mentioned chemical transformation opens up new possibilities of processing of heat-treated middlings, namely:
• Reduction in energy input of crushing and milling owing to decreased mechanical strength;
• Complete removal of ash using “dry” preparation methods only;
• Production of agglomeration semicoke using clean hydrocarbon fraction;
• Use of roasted mineral fraction to produce special binders, concrete admixtures and building units.
It is difficult to separate mineral powders less than 1 mm in size based on their magnetic and electric properties since internal friction forces in powders prevent from efficient separation of particles. It is possible to overcome these forces using the so-called vibro-combustion under certain vibrational impact. The application of this effect has allowed engineering of high-performance separators to recover individual finely dispersed mineral particles based on magnetic and electric properties. These separators have been employed in this study. Efficiency of thermochemical modification of coal and coal preparation products is evaluated using such index as the ash yield per unit calorific capacity. It has been found that cleaned semicoke 3 times exceeds original coal with respect to this index. It is proved that moderate temperature pyrolysis of both black coal and lignite improves disintegration of incombustile mineral fraction, which favors its recovery using dry preparation methods later on — combination of high-rate magnetic and triboelectric separation techniques. After such preparation process, semicoke as solid fuel has higher quality than conventionally dressed coal, and dry preparation tailings are disposable.
This study has been supported by the Russian Science Foundation, Project No. 15-17-300015.

Ключевые слова High-ash coal, dry preparation, low-temperature coking, magnetic separation, triboelectric separation
Библиографический список

1. Maoming F. et al. Fine coal dry classification. The European Journal of Mineral Processing and Environmental Protection. 2003. No. 3/2.
2. Soong Y., Link, T. A. et al. Dry beneficiation of Slovakian coal. Fuel Processing Technology. 2001. No. 72. pp. 185–198.
3. Dwari R. K., Rao H. K. Dry benefi ciation of coal — a review. Mineral processing and extractive metallurgy Review. 2007. No. 28/3. pp. 177–234.
4. Katalambula H., Gupta R. Low-grade coals: A review of some prospective upgrading technologies. Energy and Fuels. 2009. No. 23(7). pp. 3392–3405.
5. Domazetis G., Barilla P., James B., Glaisher R. Treatments of low-rank coals for improved power generation and reduction in Greenhouse gas emissions. Fuel Processing Technology. 2008. No. 89(1). pp. 68–76.
6. Skov E. R., Neubauer D. Syncrude oil and upgraded syncoal production from mild temperature pyrolysis of LRC. International Freiberg Conference on IGCC and XTL Technologies. Freiberg, Germany, 9 May 2007.
7. Gong X., Zhou Sh. Development and perspective of lignite modification technology. Proceedings of the 17 International Coal Preparation Congress. Istanbul, Turkey, 2013. pp. 595–598.
8. Sarunae N., Ness M., Bullinger C., Mathews J., Halleck P. A novel fluidized bed drying and density segregation process for upgrading low-rank coals. International Journal of Coal Preparation and Utilization. 2009. No. 29(6). pp. 317–332.
9. Weinstein R., Snoly R., Oder R. Combining technology to make lignite into a premium fuel: using an integrated air and magnetic separation process. 18th International Low-Rank Fuels Symposium. Billings, Montana, June 24–26, 2003.
10. Oder R. The Mag Mill: Innovation in dry coal cleaning Technology enhancing environment compatibility and resource sustainability. International Symposium of Clean Coal Technology. Taiwan, China, September 24–26, 2012.
11. Royaei M., Joriani E., Chehren C. Combination of microwave and ultrasonic irradiations as a pretreatment method to produce ultraclean coal. International Journal of Coal Preparation and Utilization. 2012. No. 32(3). pp. 143–155.
12. Trigwell S., Tennal K. B., Mazumder M. K., Lindquist D. A. Precombustion cleaning of coal by triboelectric separation of minerals. Particle Science and Technology. 2013. No. 21. pp. 353–364.
13. Shkoller M. B., Dyakov S. P., Subbotin S. P. Sovremennye energotekhnologicheskie protsessy glubokoy pererabotki tverdykh topliv (Modern energy and technological processes of deep processing of solid fuels). Kemerovo : Kuzbasvuzizdat, 2012. 185 p.
14. Islamov S. R. Pererabotka nizkosortnykh ugley i vysokokaloriynoe toplivo (Processing of low-grade coals and high-calorific fuel). Ugol = Russian Coal Journal. 2012. No. 3. pp. 64–66.
15. Golovanevsky V. A. et al. Vibration-induced phenomena in bulk granular materials. International Journal of Mineral Processing. 2011. No. 100. pp. 79–85.
16. Chanturiya V. A., Vaysberg L. A., Kozlov A. P. Prioritetnye napravleniya issledovaniy v oblasti pererabotki mineralnogo syrya (Promising trends in investigations aimed at all-round utilization of mineral raw materials). Obogashchenie Rud = Mineral processing. 2014. No. 2. pp. 2–8.
17. Arsentev V. A., Vaysberg L. A., Ustinov I. D. Napravleniya sozdaniya malovodnykh tekhnologiy i apparatov dlya obogashcheniya tonkoizmelchennogo mineralnogo syrya (Trends in development of lawwater-consumption technologies and machines for finely ground mineral materials processing). Obogashchenie Rud = Mineral processing. 2014. No. 5. pp. 3–9.
18. Syroezhko A. M., Gerasimov A. M., Abrosimov A. A. Termokhimicheskaya podgotovka uglya k sukhomu obogashcheniyu (Thermochemical coal treatment prior to dry beneficiation). Obogashchenie Rud = Mineral processing. 2015. No. 6. pp. 9–13.

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