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Articles

Kinetic studies on bituminous coal char gasification using CO2 and H2O mixtures

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Pages 1144-1151 | Received 22 Oct 2018, Accepted 06 Aug 2019, Published online: 15 Aug 2019

References

  • Arumugam, S., B. Thien, K. Annamalai, and J. Sweeten. 2005. Feedlot biomass co-firing: a renewable energy alternative for coal-fired utilities. International Journal of Green Energy 2:409–19. doi:10.1080/01971520500288055.
  • Bagreev, A. B., J. A. Menendez, I. Dukhno, Y. Tarasenko, and T. J. Bandosz. 2004. Bituminous coal-based activated carbons modified with nitrogen as adsorbents of hydrogen sulfide. Carbon 42:469–76. doi:10.1016/j.carbon.2003.10.042.
  • Chu, M. S., and Q. J. Zhao. 2008. Current situation and prospect of China’s development of non-blast furnace ironmaking. China Metallurgical 9:1–9. doi:10.13228/j.boyuan.issn1006-9356.2008.09.006.
  • Dai, Z., X. Gong, X. Guo, H. Liu, F. Wang, and Z. Yu. 2008. Pilot-trial and modeling of a new type of pressurized entrained-flow pulverized coal gasification technology. Fuel 87:2304–13. doi:10.1016/j.fuel.2007.12.005.
  • Duan, T. H., C. P. Lu, S. Xiong, Z. B. Fu, and Y. Z. Chen. 2016. Pyrolysis and gasification modelling of underground coal gasification and the optimisation of CO2 as a gasification agent. Fuel 183:557–67. doi:10.1016/j.fuel.2016.06.118.
  • Eftekhari, A. A., H. V. D. Kooi, and H. Bruining. 2012. Exergy analysis of underground coal gasification with simultaneous storage of carbon dioxide. Energy 45:729–45. doi:10.1016/j.energy.2012.07.019.
  • Gong, F. Y., T. Q. Ye, L. X. Yuan, K. Tao, Y. Torimoto, M. Yamamoto, and Q. X. Li. 2009. Direct reduction of iron oxides based on steam reforming of bio-oil: a highly efficient approach for production of DRI from bio-oil and iron ores. Green Chemistry 11:2001–12. doi:10.1039/b915830h.
  • Guo, Z., X. Song, Y. Zhao, and D. Duan. 2003. Preparation of direct return gas by combined gasification of coal oxygen water vapor and coke oven gas. Iron & Steel 38:56–61. doi:10.13228/j.boyuan.issn0449-749x.2003.12.015.
  • HU, J.-G., and Z. M. Gao. 2014. Development of DRI production technology by coal gasified shaft furnace. Research on Iron & Steel 38:50–53. (in Chinese).
  • Huang, Z. C., D. G. Yang, and L. Y. Yi. 2012. Effect of thermal charging of iron ore pellets on the reduction rate and compressive strength in gas-based reduction process. Advanced Materials Research 532:262–66. doi:10.4028/AMR.532-533.262.
  • Karmakar, S., M. V. J. J. Suresh, and A. K. Kolar. 2013. The effect of advanced steam parameter-based coal-fired power plants with CO2 capture on the Indian energy scenario. International Journal of Green Energy 10:1011–25. doi:10.1080/15435075.2012.729171.
  • Kato, Y. 2010. Carbon recycling for reduction of carbon dioxide emission from iron-making process. Transactions of the Iron & Steel Institute of Japan 50:181–85. doi:10.2355/isijinternational.50.181.
  • Lu, W. K., and M. G. Ranade. 2007. Recent advances in blast furnace ironmaking in North America. Isij International 31:395–402. doi:10.2355/isijinternational.31.395.
  • Mousa, E. A., D. Senk, A. Babich, and H. W. Gudenau. 2013. Influence of nut coke on iron ore sinter reducibility under simulated blast furnace conditions. Ironmaking & Steelmaking 37:219–28. doi:10.1179/030192309X12506804200906.
  • Neal, A. L., K. M. Rosso, G. G. Geesey, Y. A. Gorby, and B. J. Little. 2003. Surface structure effects on direct reduction of iron oxides by Shewanella oneidensis. Geochimica et cosmochimica acta 67:4489–503. doi:10.1016/S0016-7037(03)00386-7.
  • Nogami, H., J. I. Yagi, S. Y. Kitamura, and P. R. Austin. 2006. Analysis on material and energy balances of ironmaking systems on blast furnace operations with metallic charging, top gas recycling and natural gas injection. Isij International 46:1759–66. doi:10.2355/isijinternational.46.1759.
  • Parisi, D. R., and M. A. Laborde. 2004. Modeling of counter current moving bed gas-solid reactor used in direct reduction of iron ore. Chemical Engineering Journal 104:35–43. doi:10.1016/j.cej.2004.08.001.
  • Patel, S. K. 2008. Characteristics of Indian non-coking coals and iron ore reduction by their chars for directly reduced iron production. Mineral Processing & Extractive Metallurgy Review 29:258–73. doi:10.1080/08827500801997902.
  • Ramasamy, S., P. P. Sripada, M. M. Khan, T. Su, J. Trivedi, and R. Gupta. 2014. Adsorption behavior of CO2 in coal and coal char. Energy & Fuels 28:5241–51. doi:10.1021/ef500239b.
  • Senior, C. L., L. E. B. Iii, S. Srinivasachar, B. R. Pease, and K. Porle. 2000. Pilot scale study of trace element vaporization and condensation during combustion of a pulverized sub-bituminous coal. Fuel Processing Technology 63:149–65. doi:10.1016/S0378-3820(99)00094-6.
  • Shen, F., S. Bo, K. Paulsson, E. Kapilashrami, W. Guo, M. Chu, and Y. Shen. 2008. Industrial practice of BIPCI process of pulverized coal injection for blast furnace ironmaking at SSAB. Steel Research International 79:11–16. doi:10.1002/srin.200806310.
  • Shen, F., T. Yang, and B. Gao. 2005. Technology progress and strategy in blast furnace ironmaking in China. Steel Research International 76:676–82. doi:10.1002/srin.200506076.
  • Soedarsono, J. W., V. Astini, F. Fazri, A. Kawigraha, R. D. Sulamet-Ariobimo, A. Rustandi, and S. Tjahyono. 2014. Effect of carbon content in direct reduction process of limonite iron oxide to produce pig iron substitute for thin wall ductile iron process. Advanced Materials Research 887:281–86. doi:10.1039/b915830h.
  • Sui, Y, Y Guo, and T Jiang, et al. 2017. Reduction kinetics of oxidized vanadium titano-magnetite pellets using carbon monoxide and hydrogen. Journal Of Alloys and Compounds 706:546-553.
  • Wang, C., and J. Y. Yan. 2005. Feasibility analysis of wood pellets production and utilization in China as a substitute for coal. International Journal of Green Energy 2:91–107. doi:10.1081/GE-200051313.
  • Wang, Z. C., M. S. Chu, Z. G. Liu, S. Y. Chen, and X. X. Xue. 2012. Effects of temperature and atmosphere on pellets reduction swelling index. Journal of Iron and Steel Research 19:7–12. doi:10.1016/S1006-706X(12)60144-7.
  • Worrell, E., L. Price, and N. Martin. 2001. Energy efficiency and carbon dioxide emissions reduction opportunities in the US iron and steel sector. Energy 26:513–36. doi:10.1016/S0360-5442(01)00017-2.
  • Wu, D., G. Liu, and R. Sun. 2014. Investigation on structural and thermodynamic characteristics of perhydrous bituminous coal by fourier transform infrared spectroscopy and thermogravimetry/mass spectrometry. Energy Fuels 28:3024–35. doi:10.1021/ef5003183.
  • Xu, S. B., and H. F. Xu. 2016. Development of smelting reduction ironmaking technology and future thinking. China Metallurgy 26:33–39. doi:10.13228/j.boyuan.issn1006-9356.20160028.
  • Yang, Z., L. Zhang, J. Peng, and M. Guo. 2015. Gasification of inferior coal with high ash content under CO2 and O2/H2O atmospheres. International Journal of Green Energy 12:1046–53. doi:10.1080/15435075.2014.962031.
  • Yi, L. Y., Z. C. Huang, H. Peng, and T. Jiang. 2011. Experimental research on the novel process of iron ore direct reduction by coal gas. Advanced Materials Research 311:891–97. doi:10.4028/AMR.311-313.891.
  • Zervas, T., J. T. Mcmullan, and B. C. Williams. 2015. Solid‐based processes for the direct reduction of iron. International Journal of Energy Research 20:255–78. doi:10.1002/(SICI)1099-114X(199603)20:3<255::aid-er267>3.3.CO;2-J.
  • Zhou, Z., Q. Xue, H. Tang, G. Wang, and J. Wang. 2017. Coal combustion behavior in new ironmaking process of top gas recycling oxygen blast furnace. JOM 69:1790–94. doi:10.1007/s11837-017-2515-3.

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