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Characterization of Catalytic Cracking Catalysts Regenerated by Gasifying Deposited Coke 被引量:5

Characterization of Catalytic Cracking Catalysts Regenerated by Gasifying Deposited Coke
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摘要 Partially or fully regenerated catalytic cracking catalysts were prepared by gasifying the coke deposited on coked catalysts with a gaseous mixture of oxygen and steam in a fixed fluidized bed (FFB). The resultant samples were characterized by different methods such as the nitrogen adsorption-desorption analysis, the X-ray diffractometry, the infrared spectroscopy, the ammonia temperature-programmed desorption (NH3-TPD) method, the X-ray fluorescence (XRF) analysis, the transmission electron microscopy and energy dispersive X-ray spectroscopy (TEM-EDX), the thermal-gravimetric analysis (TGA) and the differential thermal analysis (DTA). The results showed that exposure of catalyst to steam for about 10 minutes at temperature ≥ 800 ℃ could not cause too much destruction of the catalysts, and an amount of coke equating to about 0.27 m% was enough to block approximately all acid sites in micro-pores of the zeolite catalyst. Coke didn't show equal reactivity during coke burning-off that could be accelerated by the catalytic action of nearby metal atoms. However, when the carbon content on the catalyst reached about 2.44 m%, the catalytic action of metals on the catalyst was not evident. The severe thermal and hydrothermal environment during exposure of the catalyst to steam at a temperature in the range of about 860--880 ℃ for 30 minutes could lead to collapse of pore structure and transformation of crystal phase and consequently decrease of the surface area and acid amount on the catalyst.
出处 《China Petroleum Processing & Petrochemical Technology》 SCIE CAS 2010年第1期5-12,共8页 中国炼油与石油化工(英文版)
关键词 coked catalysts GASIFICATION hydrothermal destruction CHARACTERIZATION 再生催化剂 表征方法 焦炭 催化裂解 沉积 气化 透射电子显微镜 程序升温脱附
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参考文献9

  • 1Meyers R A. Handbook of Petroleum Refining Processes (3rd edition)[M]. New York: McGraw-Hill Professional, 2003, 157-158.
  • 2Bradshaw R W. Combination of hydrocarbon cracking, hydrogen production and hydrocracking: US, 4207167[P]. 1980.
  • 3Hsing Hsu-Hui, Mudra J I V. Fluid catalytic cracking process yielding hydrogen: US, 5362380[P]. 1994.
  • 4Williams R H.Toward zero emissions from coal in China [J]. Energy for Sustainable Development, 2001, 5(4): 39-65.
  • 5Salmana N, Riischera C H, Buhla C J, et al. Effect of temperature and time in the hydrothermal treatment of HY zeolite [J]. Microporous and Mesoporous Materials, 2006, 90(1-3): 339- 346.
  • 6刘新锦,徐木生,黄铁钢.高岭土的活化研究[J].硅酸盐通报,1998,17(1):37-40. 被引量:26
  • 7Cerqueira H S, Caeiro G, Costa L, et al. Deactivation of FCC catalysts[J]. Journal of Molecular Catalysis A: Chemical, 2008, 292(1-2): 1-13.
  • 8Tang Dahai, Christoph K, Andreas J. Influence of chemical reaction rate, diffusion and pore structure on the regeneration ofa coked A1203-catalyst[J]. Applied Catalysis A: General, 2004, 272(1-2): 187-199.
  • 9Douchko Douchanov, Gergina Angelova. Effect of catalysis and inlet gas on coal gasification[J]. Fuel, 1983, 62(2): 231- 233.

二级参考文献1

  • 1陶维屏,中国高岭土矿床地质学,1984年,67页

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