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Review Article

Thermodynamic system analysis of calcium carbide based on incomplete combustion oxygen-thermal method

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Pages 1-17 | Received 21 Feb 2023, Accepted 10 May 2023, Published online: 15 Nov 2023

References

  • Ali, A., and Z. Chen. 2020. Direct liquefaction techniques on lignite coal: A review. Chinese Journal of Catalysis 41 (3):375–89. doi:10.1016/S1872-2067(19)63492-3.
  • Chen, X., and D. Zheng. 2014. Thermodynamic characteristics of reactants and energy conversion in steam reforming of calcium carbide furnace off-gas to produce hydrogen. International Journal of Hydrogen Energy 39 (21):10996–1005. doi:10.1016/j.ijhydene.2014.05.079.
  • El-Naas, M. H., R. J. Munz, and F. Ajersch. 1998. Solid-phase synthesis of calcium carbide in a Plasma reactor. Plasma Chemistry and Plasma Processing 18 (3):409–27. doi:10.1023/A:1021853604019.
  • Gong, X.-Z., J.-Q. Zhang, Z. Wang, D. Wang, J.-H. Liu, X.-D. Jing, G.-Y. Qian, and C. Wang. 2020. Development of calcium coke for CaC2 production using calcium carbide slag and coking coal. International Journal of Minerals, Metallurgy and Materials 28 (1):76–87. doi:10.1007/s12613-020-2049-5.
  • Guo, J., and D. Zheng. 2012. Thermodynamic analysis of low-rank-coal-based oxygen-thermal acetylene manufacturing process system. Industrial & Engineering Chemistry Research 51 (41):13414–22. doi:10.1021/ie301986q.
  • Hh, A., B. Xla, W. Zhi, B. Gla, B. Rda, B. Fsa, W. Zhou, and Z. Jiang. 2021. Case study of a novel low rank coal to calcium carbide process based on techno-economic assessment. Energy 228:228. doi:10.1016/j.energy.2021.120566.
  • Huang, S., X. Zhou, S. Wu, Y. Wu, and J. Gao. 2018. Effect of carbonization temperature on the product distributions and characteristics for integrated mild liquefaction and carbonization of low rank coals. Energy & Fuels 32 (4):4754–62. doi:10.1021/acs.energyfuels.7b04142.
  • Huo, H., X. Liu, Z. Wen, G. Lou, R. Dou, F. Su, J. Fang, and Z. Jiang. 2022. Life cycle assessment and sustainable production evaluation of calcium carbide industry in China. Journal of Cleaner Production (Aug1) 360:360. doi:https://doi.org/10.1016/j.jclepro.2022.132176.
  • Hu, H., W. Y. Ying, and D. Y. Fang. 2010. Reaction and deactivation kinetics of methanol-to-olefins process based on a special TGA reactor. Journal of Natural Gas Chemistry 19 (4):409–16. doi:10.1016/S1003-9953(09)60097-9.
  • Jeon, M. K., J. M. Shin, J. J. Park, and G. I. Park. 2012. Simulation of cs behavior during the high temperature voloxidation process using the HSC chemistry code. Journal of Nuclear Materials 430 (1–3):37–43. doi:10.1016/j.jnucmat.2012.06.040.
  • Li, G., Q. Liu, and Z. Liu. 2012. CaC2 production from pulverized Coke and CaO at low temperatures—influence of minerals in coal-derived Coke. Industrial & Engineering Chemistry Research 51 (33):10748–54. doi:10.1021/ie3006726.
  • Li, G., Q. Liu, Z. Liu, Z. C. Zhang, C. Li, and W. Wu. 2010. Production of calcium carbide from fine biochars. Angewandte Chemie International Edition 49 (45):8480–83. doi:10.1002/anie.201004169.
  • Li, R. X., S. Ma, H. T. Ma, S. H. Liu, and H. Wang. 2020. Numerical simulation of heat transfer and chemical reaction of CaO-C porous pellets in the reaction layer of calcium carbide furnace. Applied Thermal Engineering 181:30. doi:10.1016/j.applthermaleng.2020.115877.
  • Liu, X., Z. Bing, W. Zhou, S. Hu, D. Chen, and C. Griffy-Brown. 2011. CO2 emissions in calcium carbide industry: An analysis of China’s mitigation potential. International Journal of Greenhouse Gas Control 5 (5):1240–49. doi:10.1016/j.ijggc.2011.06.002.
  • Liu, L., P. Yang, and H. Liu. 2012. Thermodynamic analysis of calcium carbide synthesis and its thermal coupling with coke combustion. Journal of Beijing University of Chemical Technology(natural Science Edition) 39 (2):1–6.
  • Liu, Y., C. Zhou, F. Li, H. Liu, and J. Yang. 2020. Stocks and flows of polyvinyl chloride (PVC) in China: 1980-2050. Resources, Conservation & Recycling 154:104584. doi:10.1016/j.resconrec.2019.104584.
  • Li, Z., W. Wu, X. Guo, Q. Liu, and Z. Liu. 2018. Analysis of carbon fines obtained from the off-gas dust of calcium carbide furnace. Journal of Material Cycles and Waste Management 20 (1):614–21. doi:10.1007/s10163-017-0627-z.
  • Lu, Y., W. Yan, and P. Jiang. 2015. Thermal calculation and analysis of oxygen-fuel calcium carbide production in coal-fired power station combined calcium carbide multi-generation system. Chemical Industry & Engineering Progress 39 (1):102–07.
  • Messerle, V. E., and A. B. Ustimenko. 2014. Plasma-fuel systems utilization for ecological and energy efficiency of thermal power Plants: Progress in exergy. Energy, and the Environment 961–976. doi:10.1007/978-3-319-04681-5_92.
  • Morehead, J. T., and G. de Chalmot. 2002. The manufacture of calcium carbide. Journal of the American Chemical Society 18 (4):311–31. doi:10.1021/ja02090a001.
  • Paizullakhanov, M. S., and S. A. Faiziev. 2006. Calcium carbide synthesis using a solar furnace. Technical Physics Letters 32 (3):211–12. doi:10.1134/S1063785006030102.
  • Rodygin, K. S., M. S. Ledovskaya, V. V. Voronin, K. A. Lotsman, and V. P. Ananikov. 2021 1. Calcium carbide: Versatile synthetic applications, green methodology and sustainability. European Journal of Organic Chemistry 2021 (1):43–52. doi:10.1002/ejoc.202001098.
  • Rodygin, K. S., G. Werner, F. A. Kucherov, and V. P. Ananikov. 2016. Calcium carbide: A unique reagent for organic synthesis and nanotechnology. Chemistry-An Asian Journal 11 (7):965–76. doi:10.1002/asia.201501323.
  • Saeki, Y., and T. Emura. 2002. Technical progresses for PVC production. Progress in Polymer Science 27 (10):2055–131. doi:10.1016/s0079-6700(02)00039-4.
  • Schulz, H. 2010. “Coking” of zeolites during methanol conversion: Basic reactions of the MTO-, MTP- and MTG processes. Catalysis Today 154 (3–4):183–94. doi:10.1016/j.cattod.2010.05.012.
  • Wang, R., L. Ji, Q. Liu, D. Zheng, and Z. Liu. 2014. Development of auto-thermal production of calcium carbide. CIESC Journal. doi:10.3969/j.issn.0438-1157.2014.07.003.
  • Wang, R. X., Z. Y. Liu, L. M. Ji, X. J. Guo, X. Lin, J. F. Wu, and Q. Liu. 2016. Reaction kinetics of CaC2 formation from powder and compressed feeds. Frontiers of Chemical Science and Engineering 10 (4):517–25. doi:10.1007/s11705-016-1585-z.
  • Wang, H., W. Xu, M. Sharif, X. Wu, G. Cheng, X. Cui, and Z. Zhang. 2022. Carbon-calcium composite conversion of calcium carbide-acetylene system: On the imperative roles of carbon capture and solid waste recycling. Applied Energy 327:120139. doi:10.1016/j.apenergy.2022.120139.
  • Wu, W., F. Wen, and B. Shi. 2020. Assessing the commercial potential of IGCC polygeneration/power plants integrated with chemical-looping processes. Journal of the Taiwan Institute of Chemical Engineers 112:296–305. doi:10.1016/j.jtice.2020.06.003.
  • Xu, Q., Y. S. Li, S. P. Deng, Y. L. He, L. Li, and H. J. Yu. 2019. Modeling of multiprocess behavior for feedstock-mixed porous pellet: Heat and Mass transfer, chemical reaction, and phase change. Acs Sustainable Chemistry & Engineering 7 (14):12510–19. doi:10.1021/acssuschemeng.9b02220.
  • Yi, Xinxin, D. X. Zheng, X. H. Chen, X. P. Yang, and M. A. Zhao. 2012 . Evaluation of Calcium Carbide Furnace Off-Gas-Based Clean Fuels Manufacturing Processes. Journal of Engineering Thermophysics. 37 (3):475–481.
  • Zhang, S., J. Li, G. Li, Y. Nie, L. Qiang, B. Bai, and X. Ma. 2021. Life cycle assessment of acetylene production from calcium carbide and methane in China. Journal of Cleaner Production(nov1) 322:322. doi:https://doi.org/10.1016/j.jclepro.2021.129055.

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