Supported Ga-oxide Catalyst for Dehydrogenation of Ethane

被引:7
作者
Saito, Hikaru [1 ]
Maeda, Shun [1 ]
Seki, Hirofumi [1 ]
Manabe, Shota [1 ]
Miyamoto, Yuji [1 ]
Ogo, Shuhei [1 ]
Hashimoto, Kunihide [2 ]
Sekine, Yasushi [1 ]
机构
[1] Waseda Univ, Dept Appl Chem, Shinjuku Ku, 3-4-1 Okubo, Tokyo 1698555, Japan
[2] Kubota Corp, Mat Technol Dept, Steel Castings R&D Grp, 1-1-1 Nakamiya Dike, Hirakata, Osaka 5738573, Japan
关键词
Ethane cracker; Ethane dehydrogenation; Gallium catalyst; XANES; Calcination temperature; GALLIUM OXIDE; BUTANE DEHYDROGENATION; ETHYLENE PRODUCTION; STEAM CRACKING; COKE FORMATION; SHALE GAS; PART I; PROPANE; CO2; MECHANISM;
D O I
10.1627/jpi.60.203
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
We studied dehydrogenation catalysts to improve the performance of the ethane cracking tube. Ga, Ge, In, and Sn were studied as dehydrogenation catalysts. Catalytic activity tests showed that the Ga catalyst has the best performance among them. Although the Ga catalyst supported on alpha-Al2O3 calcined at 1323 K deactivated with time on stream, the Ga catalyst supported on gamma-Al2O3 calcined at 1323 K showed high ethylene yield and stability. Analyses of BET, XRD, EDX, and XANES were conducted to elucidate the differences of their performances. Ga catalyst supported on gamma-Al2O3 calcined at 1323 K showed high catalytic activity and stability because Ga was supported as a highly dispersed beta-Ga2O3-like structure thanks to high specific surface area of the gamma-Al2O3 support.
引用
收藏
页码:203 / 210
页数:8
相关论文
共 50 条
[21]   Oxidative dehydrogenation of ethane to ethylene with carbon dioxide over supported Ga, Fe, and Cr-containing catalysts [J].
Mishanin, I. I. ;
Zizganova, A. I. ;
Bogdan, V. I. .
RUSSIAN CHEMICAL BULLETIN, 2018, 67 (06) :1031-1034
[22]   A low carbon route to ethylene: Ethane oxidative dehydrogenation with CO2 on embryonic zeolite supported Mo-carbide catalyst [J].
Bikbaeva, Vera ;
Nesterenko, Nikolay ;
Konnov, Stanislav ;
Nguyen, Thanh-Son ;
Gilson, Jean-Pierre ;
Valtchev, Valentin .
APPLIED CATALYSIS B-ENVIRONMENT AND ENERGY, 2023, 320
[23]   Zr-modified γ-Al2O3 supported CrOx catalyst for CO2 assisted ethane dehydrogenation [J].
Wei, Siyi ;
Wang, Changqing ;
Zhou, Lei ;
Zhang, Xiaoyu ;
Zhou, Zijian ;
Liu, Xiaowei .
FUEL, 2025, 382
[24]   Ethane dehydrogenation over pore-expanded mesoporous silica supported chromium oxide: 1. Catalysts preparation and characterization [J].
Rao, T. V. Malleswara ;
Yang, Yong ;
Sayari, Abdelhamid .
JOURNAL OF MOLECULAR CATALYSIS A-CHEMICAL, 2009, 301 (1-2) :152-158
[25]   Alumina-supported Fe catalyst prepared by vapor deposition and its catalytic performance for oxidative dehydrogenation of ethane [J].
Xu, Luyao ;
Lin, Xufeng ;
Xi, Yanyan ;
Lu, Xiaoming ;
Wang, Chuangye ;
Liu, Chenguang .
MATERIALS RESEARCH BULLETIN, 2014, 59 :254-260
[26]   Ga2O3/HSSZ-13 for dehydrogenation of ethane: Effect of pore geometry of support [J].
Cheng, Yanhu ;
Gong, Huiping ;
Miao, Changxi ;
Hua, Weiming ;
Yue, Yinghong ;
Gao, Zi .
CATALYSIS COMMUNICATIONS, 2015, 71 :42-45
[27]   DFT calculations and machine learning for the study of ethane dehydrogenation on the heteroatom-doped graphene supported Pt SACs [J].
Cao, Yajie ;
Wang, Baojun ;
Fan, Maohong ;
Ling, Lixia ;
Zhang, Riguang .
CHEMICAL ENGINEERING SCIENCE, 2025, 305
[28]   Chromium oxide supported on ZSM-5 as a novel efficient catalyst for dehydrogenation of propane with CO2 [J].
Zhang, Fan ;
Wu, Runxia ;
Yue, Yinghong ;
Yang, Weimin ;
Gu, Songyuan ;
Miao, Changxi ;
Hua, Weiming ;
Gao, Zi .
MICROPOROUS AND MESOPOROUS MATERIALS, 2011, 145 (1-3) :194-199
[29]   Vanadium Oxide Supported on MSU-1 as a Highly Active Catalyst for Dehydrogenation of Isobutane with CO2 [J].
Sun, Guosong ;
Huang, Qingze ;
Huang, Shiyong ;
Wang, Qiuping ;
Li, Huiquan ;
Liu, Haitao ;
Wan, Shijie ;
Zhang, Xuewang ;
Wang, Jinshu .
CATALYSTS, 2016, 6 (03)
[30]   Dehydrogenation of ethane assisted by CO2 over Y-doped ceria supported Au catalysts [J].
Xie, Qi ;
Miao, Changxi ;
Lei, Tianqi ;
Hua, Weiming ;
Yue, Yinghong ;
Gao, Zi .
REACTION KINETICS MECHANISMS AND CATALYSIS, 2021, 132 (01) :417-429