SCI和EI收录∣中国化工学会会刊

Chinese Journal of Chemical Engineering ›› 2022, Vol. 47 ›› Issue (7): 165-173.DOI: 10.1016/j.cjche.2021.07.032

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Modeling of propane dehydrogenation combined with chemical looping combustion of hydrogen in a fixed bed reactor

Junru Liu, Rui Hu, Xinlei Liu, Qunfeng Zhang, Guanghua Ye, Zhijun Sui, Xinggui Zhou   

  1. State Key Laboratory of Chemical Engineering, School of Chemical Engineering, East China University of Science and Technology, Shanghai 200237, China
  • Received:2021-01-27 Revised:2021-06-22 Online:2022-08-19 Published:2022-07-28
  • Contact: Guanghua Ye,E-mail:guanghuaye@ecust.edu.cn
  • Supported by:
    This work was financially supported by the National Natural Science Foundation of China (22078090 and 92034301), the Shanghai Rising-Star Program (21QA1402000), the Natural Science Foundation of Shanghai (21ZR1418100), and the Open Project of State Key Laboratory of Chemical Engineering (SKL-ChE-21C02).

Modeling of propane dehydrogenation combined with chemical looping combustion of hydrogen in a fixed bed reactor

Junru Liu, Rui Hu, Xinlei Liu, Qunfeng Zhang, Guanghua Ye, Zhijun Sui, Xinggui Zhou   

  1. State Key Laboratory of Chemical Engineering, School of Chemical Engineering, East China University of Science and Technology, Shanghai 200237, China
  • 通讯作者: Guanghua Ye,E-mail:guanghuaye@ecust.edu.cn
  • 基金资助:
    This work was financially supported by the National Natural Science Foundation of China (22078090 and 92034301), the Shanghai Rising-Star Program (21QA1402000), the Natural Science Foundation of Shanghai (21ZR1418100), and the Open Project of State Key Laboratory of Chemical Engineering (SKL-ChE-21C02).

Abstract: A redox process combining propane dehydrogenation (PDH) with selective hydrogen combustion (SHC) is proposed, modeled, simulated, and optimized. In this process, PDH and SHC catalysts are physically mixed in a fixed-bed reactor, so that the two reactions proceed simultaneously. The redox process can be up to 177.0% higher in propylene yield than the conventional process where only PDH catalysts are packed in the reactor. The reason is twofold:firstly, SHC reaction consumes hydrogen and then shifts PDH reaction equilibrium towards propylene; secondly, SHC reaction provides much heat to drive the highly endothermic PDH reaction. Considering propylene yield, operating time, and other factors, the preferable operating conditions for the redox process are a feed temperature of 973 K, a feed pressure of 0.1 MPa, and a mole ratio of H2 to C3H8 of 0.15, and the optimal mass fraction of PDH catalyst is 0.5. This work should provide some useful guidance for the development of redox processes for propane dehydrogenation.

Key words: Propane dehydrogenation, Selective hydrogen combustion, Simulation, Optimization, Redox process

摘要: A redox process combining propane dehydrogenation (PDH) with selective hydrogen combustion (SHC) is proposed, modeled, simulated, and optimized. In this process, PDH and SHC catalysts are physically mixed in a fixed-bed reactor, so that the two reactions proceed simultaneously. The redox process can be up to 177.0% higher in propylene yield than the conventional process where only PDH catalysts are packed in the reactor. The reason is twofold:firstly, SHC reaction consumes hydrogen and then shifts PDH reaction equilibrium towards propylene; secondly, SHC reaction provides much heat to drive the highly endothermic PDH reaction. Considering propylene yield, operating time, and other factors, the preferable operating conditions for the redox process are a feed temperature of 973 K, a feed pressure of 0.1 MPa, and a mole ratio of H2 to C3H8 of 0.15, and the optimal mass fraction of PDH catalyst is 0.5. This work should provide some useful guidance for the development of redox processes for propane dehydrogenation.

关键词: Propane dehydrogenation, Selective hydrogen combustion, Simulation, Optimization, Redox process