Журналы →  Gornyi Zhurnal →  2016 →  №10 →  Назад

DEVELOPMENT OF DEPOSITS
Название The scope of integrated development of coal deposits in the Primorsky Krai
DOI 10.17580/gzh.2016.10.10
Автор Shkabarnya N. G., Garbuzov S. P., Shkabarnya G. N.
Информация об авторе

Far Eastern Federal University, Vladivostok, Russia:
N. G. Shkabarnya, Professor, Doctor of Engineering Sciences, shkabarnya_ng@mail.ru
S. P. Garbuzov, Associate Professor, Candidate of Geologo-Mineralogical Sciences
G. N. Shkabarnya, Leading Researcher, Candidate of Engineering Sciences

Реферат

Actual issues of rational brown coal open-cast mining in the Primorsky Krai are considered. The coals, which are currently used only as fuel, can be used as chemical-technological raw materials (piceous and bituminous residues), for humic fertilizers and for extraction of rare elements (first of all — germanium). The host rocks of coal deposits can be used as raw material for the porcelain industry (kaolin clay) and as construction materials (quartz sands), coal ash waste — to extract the associated useful components. A number of unique deposits in the Primorsky Krai are characterized by the presence of a various ore and non-metallic minerals, which complex exploitation is quite possible. As an example, the Pavlovsk brown coal deposit are considered. Application of geophysical methods allowed to establish its structure and to develop recommendations for the localization of ore mineralization areas. To improve the efficiency of coal deposits exploration with allocation of associated minerals the electrical resistivity tomography method is offered. This method uses the multielectrode system with computer control that allows you to explore the geological media in detail due to the density of the observation system. Electrical resistivity tomography is used for the detection and tracking of coal seams in the enclosing mudstones, siltstones and sandstones at the depth up to 100 m. Application of this method on the Bikin brown coal deposit and in several prospective areas shows that it can be used for solving problems of multipurpose exploitation of coal deposits in the conditions of slightly differentiated complex media.

Ключевые слова Primorsky Krai, brown coal open-cast, rare elements, host rocks, geophysical methods, electrical resistivity tomography
Библиографический список

1. Russian coal base. Volume V. Book 1. Coal basins and Far Eastern deposits. Moscow : Geoinformmark, 1997. 371 p. (in Russian)
2. Golitsyn M. V., Vyalov V. I., Bogomolov A. Kh., Pronina N. V., Makarova E. Yu., Mitronov D. V., Kuzevanova E. V., Makarov D. V. Prospects of technological use of coals in Russia. Georesursy. 2015. No. 2(61). pp. 41–53. doi: dx.doi.org/10.18599/grs.61.2.4.
3. Lavrik N. A. Some background for complex mining of coal deposits on the South of Far East. Gornyy informatsionno-analiticheskiy byulleten. 2005. Special issue “Far East”. pp. 420–430.
4. Rasskazov I. Yu., Shkabarnya N. G., Shkabarnya G. N. Electrical tomographybased imaging of mineral deposits with complex geology. Fiziko-tekhnicheskie problemy razrabotki poleznykh iskopaemykh. 2013. No. 3. pp. 57–67.
5. Loke M. H., Chambers J. E., Rucker D. F., Kuras O. Wilkinson P. B. Recent developments in the direct-current geoelectrical imaging method. Journal of Applied Geophysics. 2013. No. 95. pp. 135–156.
6. Loke M. H. Tutorial: 2-D and 3-D electrical imaging surveys. Geotomosoft Solutions. 2015. Available at : www.geotomosoft.com (accessed: 25.09.2016).
7. Sedykh A. K. Cainozoic rifting valleys of Primorye (geological structure, minerageny and geodynamics of coal genesis). Vladivostok : Dalnauka, 2008. 248 p.
8. Geodynamics, magmatizm and metallogeny of Russian East : in 2 volumes. Under the editorship of A. I. Khanchuk. Vladivostok : Dalnauka, 2006. 981 p.
9. Seredin V. V. Rare-earth mineralization in late Cainozoic explosive structures (Khankay massif, Primorye). Geologiya rudnykh mestorozhdeniy. 1998. Vol. 40, No. 5. pp. 403–418.
10. Vyalov V. I., Larichev A. I., Kuzevanova E. V. et al. Rare metals in brown coal deposits of Primorye and their resource potential. Regionalnaya geologiya i metallogeniya. 2012. No. 51. pp. 96–105.
11. Shkabarnya N. G., Shkabarnya G. N., Smolin V. A. Method of electric tomography during the investigation of coal deposits of the Far East. Gornyy informatsionnoanaliticheskiy byulleten. 2013. No. 4. Problems of mastering of georesources of the Far East. pp. 124–128.
12. Singh K. K. K., Singh K. B., Lokhande R. D., Prakash A. Multielectrode resistivity imaging technique for the study of coal seam. Journal of Scientific and Industrial Research. 2004. Vol. 63. pp. 927–930.
13. Krishnamurthy N. S., Ananda Rao V., Dewashish Kumar, Singh К. К. К., Shakeel Ahmed. Electrical resistivity imaging technique to delineate coal seam barrier thickness and demarcate water filled voids. Journal of the Geological Society of India. 2009. Vol. 73. pp. 639–650.
14. Subba Rao Ch., Majumder М., Roy J., Chaudhari М. S., Ramteke R. S. Delineating coal seams and establishing water tightness by electrical resistivity imaging. Current Science. 2015. Vol. 108, No 3. pp. 427–434.
15. Rasskazov I. Yu., Shkabarnya N. G., Shkabarnya G. N. Electrical tomography exploration of sliding-hazardous pitwall rock masses. Fiziko-tekhnicheskie problemy razrabotki poleznykh iskopaemykh. 2013. No. 5. pp. 110–118.
16. Mellors R., Yang Х., White J. А, Ramirez А., Wagoner J., Camp D. W. Advanced geophysical underground coal gasification monitoring. Mitigation and Adaptation Strategies for Global Change. 2014. pp. 1–14. doi: 10.1007/s11027-014-9584-1

Language of full-text русский
Полный текст статьи Получить
Назад