Журналы →  Gornyi Zhurnal →  2017 →  №1 →  Назад

PROCESSING AND COMPLEX USAGE OF MINERAL RAW MATERIALS
Название Magnetic moment of Urgal deposit coal specimens
DOI 10.17580/gzh.2017.01.11
Автор Selivanova T. V., Pechnikov V. S.
Информация об авторе

Far Eastern Federal University, Vladivostok, Russia:

T. V. Selivanova, Associate Professor, Candidate of Geological-and-Mineralogical Sciences, Selivanova_d@mail.ru
V. S. Pechnikov, Associate Professor, Candidate of Physico-Mathematical Sciences

Реферат

Real-time monitoring of the combustion face advance is an important aspect of operational reliability and economic efficiency of thermochemical coalbed treatment. The current methods of the combustion face control are expensive and technically complicated. In-situ coal is a weakly magnetic rock. Considering that matrix of coal and its mineral component undergo substantial thermomagnetic changes under thermal treatment, it is assumed possible to use the magnetic survey method in the real-time remote monitoring of the combustion face advance along the strike of a coalbed under thermochemical treatment. In order to check on the assumption, measurements of magnetic moment of coal samples taken from Urgal deposit of Bureinsk Coal Field were carried out in the constant magnetic field at the varied heating temperatures using a vibrating magnetometer. The magnetic moment and temperature dependences were determined on the prepared powdered coal specimens. During the tests, the specimen and air contact time was reduced to a minimum in order to eliminate oxidation of coal. Magnetic moment of a specimen was measured at a set temperature. The heating temperature of a specimen was changed by stages, starting from room temperature and finishing at 800 °C. The tests showed that under such temperature conditions, a specimen was uniformly heated throughout the volume in 3–5 min. The measurement of magnetic moment of a specimen at a set temperature was carried out in the constant magnetic field with the induction up to 125 mT. This article gives the analysis of change in magnetic properties of coal specimens depending on exposure temperature. It is found that the change in magnetic properties of the tested coal specimens under influence of high temperatures is conditioned by polymorphic transformation of sulfide minerals (pyrite) in the composition of coal matrix, with the further oxidation of sulfi de minerals and generation of ferromagnetic material that, even if present in a small amount, considerably enhances magnetic susceptibility of thermally altered coal. The research findings are applicable to validation of usability of the ground geophysics methods in the combustion front positioning and advance monitoring in the course of Urgal coal mining with thermochemical treatment.

Ключевые слова Coal, thermal action, polymorphism, sulfides, paramagnetism, ferromagnetism, magnetizability, remaining magnetization
Библиографический список

1. Gresov A. I. Geochemical classification of hydrocarbon gases of the coal basins of East Russia. Tikhookeanskaya geologiya. 2011. Vol. 30, No. 2. pp. 85–101.
2. Kreynin E. V. Non-traditional thermal technologies of stranded fuel extraction: coal, hydrocarbon raw materials. Moscow, 2004. 301 p.
3. Prokopenko S. A. Coal power engineering needs a fundamental renovation. ESKO «Ekologicheskie sistemy». 2011. No. 2. Available at : http://esco.co.ua/journal/2011_2/art071.htm (accessed: 21.09.2016).
4. Romanovskiy N. P., Selivanova T. V. Petro-physical substantiation of the remote sensing techniques for fire face advance when extracting fossil fuels. Vestnik Inzhenernoy shkoly DVFU. 2014. No. 1(18). pp. 31– 39. Available at : http://vestnikis.dvfu.ru (accessed: 15.04.2016).
5. Selivanova T. S., Pechnikov V. S. et al. The coal thermo-magnetic analysis of coal samples to evaluate the resolution of geomagnetic method when monitoring the combusting area. Vestnik Inzhenernoy shkoly DVFU. 2015. Vol. 2(23). pp. 137–144. Available at : http://vestnikis.dvfu.ru. (accessed: 15.04.2016).
6. Bhutto A. W., Bazmi A. A., Zahedi G. Underground coal gasification: from fundamentals to applications. Progress in Energy and Combustion Science. 2013. Vol. 39(1). pp. 189–214.
7. Chen Liang, Huo Chaohu, Chen Jiang Shieng, Xu Jiting. A back analysis of the temperature field in the combustion volume space during underground coal gasification. Mining Science and Technology. 2011. Vol. 21, No. 4. pp. 581–585. DOI: 10.1016/j.mstc.2011.06.018.
8. Liu Y. H., Liang X. X., Liang J and Guo S. R. Factors influenced on stability of underground coal gasification. Coal Science and Technology. 2006. Vol. 34, No. 11. pp. 79–82.
9. Liu S. Q., Li J. G., Mei M., Dong D. L. Groundwater pollution from underground coal gasifi cation. Journal of China University of Mining & Technology. 2007. Vol. 17, No. 4. pp. 467–472.
10. Lin X., Zuotang W. et al. Temperature field distribution of burnt surrounding rock in UCG stope. International Journal of Mining Science and Technology. 2014. No. 24. pp. 573–580.
11. Luo J. A., Wang L. G., Tang F. R., He Y., Zheng I. Variation in the temperature fi eld of rocks overlying a high-temperature cavity during underground coal gasificantion. Mining Science and Technology. 2011. Vol. 21, No. 5. pp. 709–713.
12. Kizilshteyn L. Ya. Geochemistry and thermochemistry of coals. Rostov-on-Don : Publishing House of Rostov University, 2006. 258 p.
13. Pecherskiy D. M., Sharonova Z. V. Thermomagnetic evidence of native iron in sediments. Fizika Zemli. 2012. No. 4. pp. 38–43.
14. Krapiventseva V. V. Atlas of types of Priamurye coals. Under the editorship of G. L. Kirillova. Vladivostok: Dalnauka, 2007. 312 p.
15. Russian coal base. Volume 4. Book 1 : Coal basins and deposits of Eastern Siberia. Moscow : JSC «Geoinformmark», 2001. 493 p.
16. Selivanova T. V. Iron-containing minerals in the coal of the deposits of the Russian Far East. Vestnik Inzhenernoy shkoly DVFU. 2014. No. 4. pp. 34–43. Available at : http://vestnikis.dvfu.ru. (accessed: 15.04.2016).

Language of full-text русский
Полный текст статьи Получить
Назад