Hydrogen transfer reaction in butene catalytic cracking over ZSM-5

被引:1
|
作者
Li, Fang [1 ]
Zhao, Qin [1 ]
Yan, Binghui [1 ]
Huang, Xin [1 ]
Ding, Chaojun [1 ]
Liu, Yueming [1 ,2 ]
He, Mingyuan [1 ,2 ]
机构
[1] East China Normal Univ, Sch Chem & Mol Engn, State Key Lab Petr Mol & Proc Engn, Shanghai Key Lab Green Chem & Chem Proc, Shanghai 200062, Peoples R China
[2] Inst Ecochongming, Shanghai 202162, Peoples R China
基金
中国国家自然科学基金;
关键词
Catalytic cracking; Olefin; Hydrogen transfer reaction; Isobutane; MFI zeolite; CONTROLLED REACTION PATHWAYS; EFFICIENT CATALYST; DEACTIVATED TS-1; OLEFIN CRACKING; PROPENE; ZEOLITE; ETHENE; HZSM-5; TRANSFORMATION; PHOSPHORUS;
D O I
10.1016/j.micromeso.2024.113122
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Hydrogen transfer reaction (HTR) is the pivotal side reaction in the catalytic cracking process of low carbon olefins. The intricate reaction pathways and product diversity of HTR directly impact the selective formation of ethylene and propylene. Therefore, elucidating the key HTR in various reaction pathways and defining the hydrogen transfer index (HTI) as a criterion lay a scientific foundation for precisely regulating HTR during olefin catalytic cracking process. Herein, the influence of the acid strength of ZSM-5 zeolites on the HTR degree was analyzed in butene catalytic cracking. Results showed that isobutane was the predominant component of HTR products, mainly derived from HTR during the dimerization-cracking of pentene (butene primary cracking product). Subsequent pentene catalytic cracking experiments validated this conclusion. Thus, the HTI in butene or pentene cracking process was defined as follows: for butene cracking process, HTI = Si-C4H10/SC5H10; for pentene cracking process, HTI = Si-C4H10/SC4H8. The HTI accurately reflected the extent of HTR with respect to the acid properties of the catalysts. Moreover, the reaction network of butene catalytic cracking process was optimized, providing a comprehensive explanation for the intriguing phenomenon of decreasing butene conversion with increasing reaction temperature when the acid strength of ZSM-5 was weak. Finally, a highperformance butene catalytic cracking catalyst, De-TS-1-0.25%P, was developed, exhibiting high olefin selectivity (92.33 %) and outstanding stability (307 h) in the conversion of butene.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] Parametric study on catalytic cracking of LDPE to liquid fuel over ZSM-5 zeolite
    Wong, S. L.
    Abdullah, T. A. Tuan
    Ngadi, N.
    Ahmad, A.
    Inuwa, I. M.
    ENERGY CONVERSION AND MANAGEMENT, 2016, 122 : 428 - 438
  • [22] Influence of particle size of ZSM-5 on the yield of propylene in fluid catalytic cracking reaction
    Gao, Xionghou
    Tang, Zhicheng
    Zhang, Haitao
    Ji, Dong
    Lu, Gongxuan
    Wang, Zhifeng
    Tan, Zhengguo
    JOURNAL OF MOLECULAR CATALYSIS A-CHEMICAL, 2010, 325 (1-2) : 36 - 39
  • [23] Synthesis of small crystal ZSM-5 zeolite by solvent-free method and catalytic cracking performance of butene
    Ma, Xin
    Yang, Jiabao
    Zhou, Jian
    Qin, Yucai
    Song, Lijuan
    Ranliao Huaxue Xuebao/Journal of Fuel Chemistry and Technology, 53 (01): : 163 - 173
  • [24] The dependence of ZSM-5 additive performance on the hydrogen-transfer activity of the REUSY base catalyst in fluid catalytic cracking
    Wallenstein, D
    Harding, RH
    APPLIED CATALYSIS A-GENERAL, 2001, 214 (01) : 11 - 29
  • [25] DIFFUSION AND CATALYTIC REACTION IN ZEOLITE ZSM-5
    HEERING, J
    KOTTER, M
    REIKERT, L
    CHEMICAL ENGINEERING SCIENCE, 1982, 37 (04) : 581 - 584
  • [26] SYNTHESIS AND CATALYTIC REACTION OF [ZR] ZSM-5
    WANG, GR
    WANG, XQ
    WANG, XS
    YU, SX
    ZEOLITES AND MICROPOROUS CRYSTALS, 1994, 83 : 67 - 74
  • [27] Catalytic behavior and reaction routes of MEK oxidation over Pd/ZSM-5 and Pd-Ce/ZSM-5 catalysts
    Yue, Lin
    He, Chi
    Zhang, Xinyan
    Li, Peng
    Wang, Zhuo
    Wang, Hailin
    Hao, Zhengping
    JOURNAL OF HAZARDOUS MATERIALS, 2013, 244 : 613 - 620
  • [28] Synthesis of Hierarchical ZSM-5 Submicron Spheres for Catalytic Cracking
    Mao, Di
    Hou, Ming
    Liu, Junyan
    Yin, Chengyang
    CHEMISTRYSELECT, 2022, 7 (46):
  • [29] A Nanocrystalline ZSM-5 for the Catalytic Cracking of Waste Cooking Oil
    Liu, Haoyu
    Zhang, Guoliang
    Yuan, Hong
    CHEMISTRYSELECT, 2024, 9 (21):
  • [30] Influence of Al zoning in ZSM-5 on catalytic cracking of hexane
    Ma, Tong
    Geng, Zubao
    Song, Yu
    Zhang, Luoming
    Shang, Yunshan
    Gong, Yanjun
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2017, 253