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Conversion and reaction kinetics of coke oven gas over a commercial Fe-Mo/Al_2O_3 catalyst 被引量:2

Conversion and reaction kinetics of coke oven gas over a commercial Fe-Mo/Al_2O_3 catalyst
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摘要 Producing methanol from coke oven gas(COG) is one of the important applications of COG. Removal of sulfur from COG is a key step of this process. Conversion and reaction kinetics over a commercial Fe-Mo/Al2O3 catalyst(T-202) were studied in a continuous flow fixed bed reactor under pressures of 1.6-2.8 MPa, space time of 1.32-3.55 s and temperatures of 240-360 °C. Though the COG contains about 0.6 mol/mol H2, hydrogenation of CO and CO2 is not significant on this catalyst. The conversions of unsaturated hydrocarbons depend on their molecular structures. Diolefins and alkynes can be completely hydrogenated even at relatively low temperature and pressure. Olefins, in contrast, can only be progressively hydrogenated with increasing temperature and pressure. The hydrodesulfurization(HDS) of CS2 on this catalyst is easy. Complete conversion of CS2 was observed in the whole range of the conditions used in this work. The original COS in the COG can also be easily converted to a low level. However, its complete HDS is difficult due to the relatively high concentration of CO in the COG and due to the limitation of thermodynamics. H2 S can react with unsaturated hydrocarbons to form ethyl mercaptan and thiophene, which are then progressively hydrodesulfurized with increasing temperature and pressure. Based on the experimental observations, reaction kinetic models for the conversion of ethylene and sulfur-containing compounds were proposed; the values of the parameters in the models were obtained by regression of the experimental data. Producing methanol from coke oven gas(COG) is one of the important applications of COG. Removal of sulfur from COG is a key step of this process. Conversion and reaction kinetics over a commercial Fe-Mo/Al2O3 catalyst(T-202) were studied in a continuous flow fixed bed reactor under pressures of 1.6-2.8 MPa, space time of 1.32-3.55 s and temperatures of 240-360 °C. Though the COG contains about 0.6 mol/mol H2, hydrogenation of CO and CO2 is not significant on this catalyst. The conversions of unsaturated hydrocarbons depend on their molecular structures. Diolefins and alkynes can be completely hydrogenated even at relatively low temperature and pressure. Olefins, in contrast, can only be progressively hydrogenated with increasing temperature and pressure. The hydrodesulfurization(HDS) of CS2 on this catalyst is easy. Complete conversion of CS2 was observed in the whole range of the conditions used in this work. The original COS in the COG can also be easily converted to a low level. However, its complete HDS is difficult due to the relatively high concentration of CO in the COG and due to the limitation of thermodynamics. H2 S can react with unsaturated hydrocarbons to form ethyl mercaptan and thiophene, which are then progressively hydrodesulfurized with increasing temperature and pressure. Based on the experimental observations, reaction kinetic models for the conversion of ethylene and sulfur-containing compounds were proposed; the values of the parameters in the models were obtained by regression of the experimental data.
出处 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第2期293-302,共10页 中南大学学报(英文版)
关键词 coke oven gas CONVERSION Fe-Mo/Al2O3 catalyst sulfur-containing compound KINETICS 反应动力学模型 铁钼催化剂 焦炉煤气 商业 加氢催化剂 固定床反应器 加氢脱硫 不饱和烃
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  • 1葛喜乐,李义烁,胡锦超,张婷婷,余江.离子液氧化脱硫(H_2S)的流程设计及实验研究[J].化工学报,2013,64(S1):170-174. 被引量:6
  • 2尚书勇,印永祥,李娟,何方方,戴晓雁.热等离子体裂解天然气和煤制乙炔乙烯[J].化工学报,2004,55(8):1380-1383. 被引量:11
  • 3王太炎.焦炉煤气开发利用的问题与途径[J].燃料与化工,2004,35(6):1-3. 被引量:25
  • 4Liu Shaowen(刘少文), Wu Guangyi(吴广义). Review on the production of hydgoren[J]. 广州化工, 2003(5): 4-9.
  • 5Hua Hua(华化). The formaldehyde industry faces reshuffle[N]. 中国化工报, 2013-4-15(3).
  • 6Zhao Yinde(赵引德). Caution must be mentioned to coke oven gas to methanol project[EB/OL]. 2012. http://www.ccin.com.cn/ccin/news/2012/08/16/237316.shtml.
  • 7Global Methanol Market Review[EB/OL]. 2012. http://www.ptq. pemex. com/…/Documents/.../PEMEX_DJohnson.pdf.
  • 8Zeng Shanghong, Fu Xiaojuan, Zhou Tiezhuang, Wang Xiaoman, Su Haiquan. Influence of pore distribution on catalytic performance over inverse CeO2/Co3O4 catalysts for CH4/CO2 reforming[J]. Fuel Processing Technology, 2013, 114: 69-74.
  • 9Zeng Shanghong, Zhang Lei, Zhang Xiaohong, Wang Yan, Pan Hui, Su Haiquan. Modification effect of natural mixed rare earths on Co/γ-Al2O3 catalysts for CH4/CO2 reforming to synthesis gas[J]. International Journal of Hydrogen Energy, 2012, 37(13): 9994-10001.
  • 10Yi Qun, Feng Jie, Li Wenying. Optimization and efficiency analysis of polygeneration system with coke-oven gas and coal gasified gas by Aspen Plus[J]. Fuel, 2012, 96:131-140.

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