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Research Article

Analysis of the Oxidation Behaviors of the Coal Samples kept Under Different Storing Conditions from the Aspect of Thermogravimetry and Oxygen Deficiency

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Pages 126-143 | Received 30 May 2017, Accepted 14 Mar 2018, Published online: 21 Mar 2018

References

  • Akgun, F., and A. Arisoy. 1994. Effect of particle size on the spontaneous heating of a coal stockpile. Combustion and Flame 99:137–46. doi:10.1016/0010-2180(94)90085-X.
  • Arisoy, A., and B. B. Beamish. 2015. Mutual effects of pyrite and moisture on coal self-heating rates and reaction rate data for pyrite oxidation. Fuel 139:107–14. doi:10.1016/j.fuel.2014.08.036.
  • Avila, C., T. Wu, and E. Lester. 2014a. Estimating the spontaneous combustion potential of coals using thermogravimetric analysis. Energy & Fuels 28:1765–73. doi:10.1021/ef402119f.
  • Avila, C., T. Wu, and E. Lester. 2014b. Petrographic characterization of coals as a tool to detect spontaneous combustion potential. Fuel 125:173–82. doi:10.1016/j.fuel.2014.01.042.
  • Baris, K., S. Kizgut, and V. Didari. 2012. Low-temperature oxidation of some Turkish coals. Fuel 93:423–32. doi:10.1016/j.fuel.2011.08.066.
  • Beamish, B. B., M. A. Barakat, and J. D. St.George. 2001. Spontaneous combustion propensity of New Zealand coals under adiabatic conditions. International Journal of Coal Geology 45:217–24. doi:10.1016/S0166-5162(00)00034-3.
  • Beamish, B. B., and G. R. Hamilton. 2005. Effect of moisture content on the R70 self-heating rate of Callide coal. International Journal of Coal Geology 64:133–38. doi:10.1016/j.coal.2005.03.011.
  • Coats, A., and J. Redfern. 1964. Kinetic parameters from thermogravimetric data. Nature 201:68–69. doi:10.1038/201068a0.
  • Deng, J., Y. Xiao, Q. Li, J. Lu, and H. Wen. 2015. Experimental studies of spontaneous combustion and anaerobic cooling of coal. Fuel 157:261–69. doi:10.1016/j.fuel.2015.04.063.
  • Ebrahimi-Kahrizsangi, R., and M. H. Abbasi. 2008. Evaluation of reliability of Coats-Redfern method for kinetic analysis of non-isothermal TGA. Transactions of Nonferrous Metals Society of China 18:217–21. doi:10.1016/S1003-6326(08)60039-4.
  • Elder, J. 1983. Proximate analysis by automated thermogravimetry. Fuel 62:580–84. doi:10.1016/0016-2361(83)90230-2.
  • Garcia, P., P. J. Hall, and F. Mondragon. 1999. The use of differential scanning calorimetry to identify coals susceptible to spontaneous combustion. Thermochimica Acta 336:41–46. doi:10.1016/S0040-6031(99)00183-5.
  • Giroux, L., C. J. Kolijn, and F. S. Pichler. 2006. Storage of small samples of coking coal for thermal rheological tests. Fuel Processing Technology 87:547–61. doi:10.1016/j.fuproc.2006.01.003.
  • Gogus, G. 2000. Thermogravimetric methods for determining composition of coals. Cement and Concrete Technology in the 2000’s Second International Symposium-Istanbul, TCMA, 218–24.
  • Haykiri-Acma, H., A. Ersoy-Mericboyu, and S. Kucukbayrak. 2002. Combustion reactivity of different rank coals. Energy Conversion and Management 43:459–65. doi:10.1016/S0196-8904(01)00035-8.
  • Kadioglu, Y., and M. Varamaz. 2003. The effect of moisture content and air-drying on spontaneous combustion characteristics of two Turkish lignites. Fuel 82:1685–93. doi:10.1016/S0016-2361(02)00402-7.
  • Kizgut, S., and S. Yilmaz. 2004. Characterization and non-isothermal decomposition kinetics of some Turkish bituminous coals by thermal analysis. Fuel Processing Technology 85:103–11. doi:10.1016/S0378-3820(03)00111-5.
  • Kok, M. V., E. Ozbas, O. Karacan, and C. Hicyilmaz. 1998. Effect of particle size on coal pyrolysis. Journal of Analytical and Applied Pyrolysis 45:103–10. doi:10.1016/S0165-2370(98)00063-1.
  • Kucuk, A., Y. Kadioglu, and M. S. Gulaboglu. 2003. A study of spontaneous combustion characteristics of a Turkish lignite: Particle size, moisture of coal, humidity of air. Combustion and Flame 133:255–61. doi:10.1016/S0010-2180(02)00553-9.
  • Kucukbayrak, S., H. Haykiri-Acma, A. Ersoy-Mericboyu, and S. Yaman. 2001. Effect of lignite properties on reactivity of lignite. Energy Conversion and Management 42:613–26. doi:10.1016/S0196-8904(00)00073-X.
  • Misra, B. K., and B. D. Singh. 1994. Susceptibility to spontaneous combustion of Indian coals and lignites: An organic petrographic autopsy. International Journal of Coal Geology 25:265–86. doi:10.1016/0166-5162(94)90019-1.
  • Nugroho, Y. S., A. C. McIntosh, and B. M. Gibbs. 2000. Low temperature oxidation of single and blended coals. Fuel 79:1951–61. doi:10.1016/S0016-2361(00)00053-3.
  • Oren, O. 2015. Investigation of the coals stocked under different storing conditions from the point of spontaneous combustion behaviors through thermogravimetry and surface adsorption mechanisms – Tuncbilek lignite case. PhD. Thesis, University of Dumlupinar.
  • Panaseiko, N. P. 1974. Influence of moisture on the low temperature oxidation of coals. Solid Fuel Chemistry 8:21–24.
  • Qi, X., D. Wang, J. A. Milke, and X. Zhong. 2011. Crossing point temperature of coal. Mining Science and Technology 21:255–60.
  • Qi, X., D. Wang, X. Zhong, J. Gu, and Y. Xu. 2010. Characteristics of oxygen consumption of coal at programmed temperatures. Mining Science and Technology 20:372–77.
  • Qi, X., D. Wang, X. Zhong, and Y. Xu. 2009. Oxygen consumption of coal at low temperatures. Procedia Earth and Planetary Science 1:366–70. doi:10.1016/j.proeps.2009.09.058.
  • Sensogut, C., H. Ozsen, and A. Demirbas. 2008. Combustion characteristics of 24 lignite samples, energy source, part A: Recovery. Utilization and Environmental Effects 30:420–28. doi:10.1080/00908310600712224.
  • Serageldin, M., and W. Pan. 1984. Coal analysis using thermogravimetry. Thermochimica Acta 76:145–60. doi:10.1016/0040-6031(84)87013-6.
  • Shah, M. R., M. Z. Raza, and N. Ahmed. 1994. Characterization of Lakhra coal by TG/DTG. Fuel Science and Technology International 12:85–95.
  • Sima-Ella, E., G. Yuan, and T. Mays. 2005. A simple kinetic analysis to determine the intrinsic reactivity of coal chars. Fuel 84:1920–25. doi:10.1016/j.fuel.2005.03.022.
  • Tonbul, Y., and K. Yurdakoc. 2001. Thermogravimetric investigation of the dehydration kinetics of KSF, K10 and Turkish bentonite. Turkish Journal of Chemistry 25:333–39.
  • Uludag, S., H. R. PhMips, and H. N. Eroglu. 2001. Assessing spontaneous combustion risk in south african coal mines using a GIS tool. 17th International Mining Congress and Exhibition of Turkey- IMCET, Mining Engineers Chamber, 243–49.
  • Vamvuka, D., E. Kastanaki, and M. Lasithiotakis. 2003. Devolatilization and combustion kinetics of low rank coal blends from dynamic measurements. Industrial and Engineering Chemistry Research 42:4732–40. doi:10.1021/ie020758m.
  • Wang, H., B. Z. Dlugogorski, and E. M. Kennedy. 1999a. Experimental study on low temperature oxidation of an Australian coal. Energy Fuels 13:1173–79. doi:10.1021/ef990040s.
  • Wang, H., B. Z. Dlugogorski, and E. M. Kennedy. 1999b. Theoretical analysis of reaction regimes in low-temperature oxidation of coal. Fuel 78:1073–81. doi:10.1016/S0016-2361(99)00016-2.
  • Wang, H., B. Z. Dlugogorski, and E. M. Kennedy. 2002. Thermal decomposition of solid oxygenated complexes formed by coal oxidation at low temperatures. Fuel 81:1913–23. doi:10.1016/S0016-2361(02)00122-9.
  • Yohe, G. R. 1958. Oxidation of coal, report of investigations 207. Urbana-Illinois: Illinois State Geological Survey.
  • Zhao, H., J. Yu, J. Liu, and A. Tahmasebi. 2015. Experimental study on the self-heating characteristics of Indonesian lignite during low temperature oxidation. Fuel 150:55–63. doi:10.1016/j.fuel.2015.01.108.
  • Zhu, J., N. He, and D. Ji. 2012. The relationship between oxygen consumption rate and temperature during coal spontaneous combustion. Safety Science 50:842–45. doi:10.1016/j.ssci.2011.08.023.

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