Журналы →  Gornyi Zhurnal →  2019 →  №7 →  Назад

PHYSICS OF ROCKS AND PROCESSES
Название Effects of cyclic freeze-thawing of coals on their ability to oxidize
DOI 10.17580/gzh.2019.07.04
Автор Epshtein S. A., Kossovich E. L., Gavrilova D. I., Agarkov K. V.
Информация об авторе

National University of Science and Technology ‘MISIS’, Moscow, Russian Federation:

S. A. Epshtein, Head of scientific-edu cational laboratory of physics and chemistry of coals, Doctor of Engineering Sciences
E. L. Kossovich, Senior researcher, scientific-educational laboratory of physics and chemistry of coals, Ph.D., e.kossovich@misis.ru
D. I. Gavrilova, Ph.D. student, Engineer of scientific-educational laboratory of physics and chemistry of coals
K. V. Agarkov, Engineer of scientific-educational laboratory of physics and chemistry of coals

Реферат

This paper presents the results of experimental studies of the effect of a relatively small number of freeze-thaw cycles (FTC) of coal on their oxidative reactivity at different temperatures. For this purpose, the methods of thermal analysis of coal in air atmosphere were used, such as thermogravimetric analysis (in the temperature range 30–900 °C) and isothermal calorimetry at 40 °C, as well as optical microscopy of the coal metallographic specimens before and after the FTC. It has been established that the ability of lignite to oxidation at high temperatures and at 40 °C remains almost unchanged after FTC. Under conditions of a limited number of freeze-thaw cycles, the studied middle-rank hard coals exhibit a higher ability to change of the organic matter structure as compared with the lignite. This is manifested in an increase in the thermal resistivity of these coals during oxidative thermal destruction under the elevated temperatures (350–900 °C), which results in a decrease in the maximum thermaldecomposition rate by more than 1.5 times as compared to the original coal and the appearance of an additional interval of thermal oxidative destruction in the range of 750–900 °C. Another indicator is an increase in the oxidative stability of the studied middle-rank hard coals under conditions of lowtemperature oxidation (40 °C), which is reflected in a decrease in the intensity of heat release after a single FTC and the absence of significant changes after two- and threefold cyclic low-temperature effects. At the same time, for these hard coals, after a fourfold cycle of freezing-thawing, an increase in the intensity of oxidation is observed in comparison with the initial ones. It has been found that the above effects are presumably associated with the formation of an oxides film on the surface of the studied coals under the influence of cyclic low-temperature effects. The increase in the number of FTC effects on middle-rank hard coals allows for a partial destruction of such films, which leads to an intensification of oxidation processes.
The study has been supported by the Russian Foundation for B asic Research (project No. 18–05–70002).

Ключевые слова Coal, freeze-thaw cycles, oxidation, thermal analysis methods, optical microscopy
Библиографический список

1. Cherepovskiy V. F. (Ed.). Coal base of Russia. Vol. 1–6. Moscow : Geoinformmark, 2001–2004.
2. Decree of the President of the Russian Federation of 02.05.2014 No. 296. URL: http://docs.cntd.ru/document/499093267 (accessed: 29.05.2019).
3. Fundamentals of the state policy of the Russian Federation in the Arctic for the period up to 2020 and further perspective [Electronic]. Available at: http://docs.cntd.ru/document/902149373 (accessed: 19.04.2019).
4. Lei Qin, Cheng Zhai, Shimin Liu, Jizhao Xu. Factors controlling the mechanical properties degradation and permeability of coal subjected to liquid nitrogen freeze-thaw. Scientific Reports. 2017. Vol. 7, No. 1. DOI: 10.1038/s41598–017–04019–7
5. Chengzheng Cai, Feng Gao, Gensheng Li, Zhongwei Huang, Peng Hou. Evaluation of coal damage and cracking characteristics due to liquid nitrogen cooling on the basis of the energy evolution laws. Journal of Natural Gas Science and Engineering. 2016. Vol. 29. pp. 30–36. DOI: 10.1016/j.jngse.2015.12.041
6. Meng Liu, Jian Li, Yufeng Duan. Effects of solvent thermal treatment on the functional groups transformation and pyrolysis kinetics of Indonesian lignite. Energy Conversion and Management. 2015. Vol. 103. pp. 66–72. DOI: 10.1016/j.enconman.2015.06.047
7. Fedorova S. E. Problems of fire and ecological safety of cryolite-zone coal deposits development. GIAB. 2009. Special Issue 12. Safety. pp. 329–333.
8. Fedorova S. E. Forecast and prevention of the endogenous fire hazard of coal deposits in the cryolithozone. GIAB. 2007. Special Issue 14. Safety. pp. 206–209.
9. Scibioh M. A., Viswanathan B. Carbon Dioxide to Chemicals and Fuels. Amsterdam : Elsevier, 2018. 510 p. DOI: 10.1016/B978–0-444–63996–7.00003–1
10. Jizhao Xu, Cheng Zhai, Shimin Liu, Lei Qin, Shangjian Wu. Pore variation of three different metamorphic coals by multiple freezing-thawing cycles of liquid CO2 injection for coalbed methane recovery. Fuel. 2017. Vol. 208. pp. 41–51. DOI: 10.1016/j.fuel.2017.07.006
11. Novikov E. A., Oshkin R. O., Shkuratnik V. L., Epshtein S. A., Dobryakova N. N. Application of thermally stimulated acoustic emission method to assess the thermal resistance and related properties of coals. International Journal of Mining Science and Technology. 2018. Vol. 28, No. 2. pp. 243–249. DOI: 10.1016/j.ijmst.2017.12.019
12. Novikov E. A., Shkuratnik V. L., Zaytsev M. G., Oshkin R. O. Changes in properties and state of coal exposed to freeze-thaw weathering: evidence from thermally induced acoustic emission. Earth’s Cryosphere. 2018. Vol. XXII, No. 4. pp. 76–85. DOI: 10.21782/KZ1560-7496-2018-4(76-85)
13. Epshtein S. A., Nikitina I. M., Agarkov K. V., Nesterova V. G. Effects of cyclic freezing and thawing on coals quality indices. GIAB. 2019. No. 6. pp. 5–18.
14. Khrenkova T. M. Mechanochemical activation of coals. Moscow : Nedra, 1993. 176 p.
15. Epshtein S. A., Kossovich E. L., Kaminskii V. A., Durov N. M., Dobryakova N. N. Solid fossil fuels thermal decomposition features in air and argon. Fuel. 2017. Vol. 199. pp. 145–156. DOI: 10.1016/j.fuel.2017.02.084
16. Epshtein S. A., Adamtsevich A. O., Gavrilova D. I., Kossovich E. L. Thermal methods exploitation for coals propensity to oxidation and self-ignition study. Gornyi Zhurnal. 2016. No. 7. pp. 100–104. DOI: 10.17580/gzh.2016.07.22
17. Subhajit Aich, Nandi B. K., Bhattacharya S. Effect of weathering on physico-chemical properties and combustion behavior of an Indian thermal coal. International Journal of Coal Science & Technology. 2019. Vol. 6, Iss. 1. pp. 51–62. DOI: 10.1007/s40789–018–0235–0
18. Grekov S. P., Orlikova V. P. Sorption processes during low-temperature oxidation of coal. High-tech technologies for the development and use of mineral resources. 2017. No. 3. pp. 398–401.
19. Kai Wang, Xiangrong Liu, Jun Deng, Yanni Zhang, Shangrong Jiang. Effects of pre-oxidation temperature on coal secondary spontaneous combustion. Journal of Thermal Analysis and Calorimetry. 2019. No. 3. pp. 1–8. DOI: 10.1007/s10973-019-08138-3
20. Wagner N. J. The characterization of weathered discard coals and their behaviour during combustion. Fuel. 2008. Vol. 87, Iss. 8–9. pp. 1687–1697. DOI: 10.1016/j.fuel.2007.09.009
21. Kus J., Misz-Kennan M. Coal weathering and laboratory (artificial) coal oxidation. International Journal of Coal Geology. 2017. Vol. 171. pp. 12–36. DOI: 10.1016/j.coal.2016.11.016
22. Vyalov V. I., Gamov M. I., Epshtein S. A. Petrographic and electron-microscopic studies of the oxidation and mineral impurities of coal. Solid Fuel Chemistry. 2013. Vol. 47, No. 2. pp. 124–128. DOI: 10.3103/S0361521913020122

Language of full-text русский
Полный текст статьи Получить
Назад