CO2-Free Hydrogen Production by Catalytic Pyrolysis of Hydrocarbon Feedstocks in Molten Ni-Bi

被引:60
作者
Palmer, Clarke [1 ]
Bunyan, Elaine [1 ]
Gelinas, John [1 ]
Gordon, Michael J. [1 ]
Metiu, Horia [2 ]
McFarland, Eric W. [1 ]
机构
[1] Univ Calif Santa Barbara, Dept Chem Engn, Santa Barbara, CA 93106 USA
[2] Univ Calif Santa Barbara, Dept Chem & Biochem, Santa Barbara, CA 93106 USA
基金
美国国家科学基金会;
关键词
BUBBLE-COLUMN REACTOR; METHANE PYROLYSIS; THERMAL-CRACKING; ORGANIC-REACTION; CARBON; TEMPERATURE; METALS; HYDROCRACKING; SPECTROSCOPY; KINETICS;
D O I
10.1021/acs.energyfuels.0c03080
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
The catalytic decomposition of methane, propane, benzene, and crude petroleum was investigated between 900 and 1000 degrees C in molten metal bubble column reactors. The conversion to gas phase products and solid carbon was measured after introducing the gas phase reactants into a bubble column reactor containing a catalytic molten mixture of 27 mol % Ni and 73 mol % Bi. The conversions of propane, benzene, and crude oil are 100% at temperatures >950 degrees C at a reactor residence time of similar to 1 s. Equilibrium selectivity of 100% H-2 and carbon was not achieved in the short residence time, but can be achieved at longer residence times. The solid carbon products obtained from methane pyrolysis were more graphitic than those produced from the other, highermolecular weight reactants; the latter were more amorphous, as measured by Raman spectroscopy and electron microscopy and resembled carbon black. A model is proposed for carbon formation in bubble column reactors, in which amorphous carbon products are derived from the gas-phase decomposition and graphitic carbon products are formed from dissolution and reprecipitation of carbon into and out of the molten metal.
引用
收藏
页码:16073 / 16080
页数:8
相关论文
共 51 条
[1]   Thermal cracking of methane into Hydrogen for a CO2-free utilization of natural gas [J].
Abanades, A. ;
Rubbia, C. ;
Salmieri, D. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (20) :8491-8496
[2]   Experimental analysis of direct thermal methane cracking [J].
Abanades, A. ;
Ruiz, E. ;
Ferruelo, E. M. ;
Hernandez, F. ;
Cabanillas, A. ;
Martinez-Val, J. M. ;
Rubio, J. A. ;
Lopez, C. ;
Gavela, R. ;
Barrera, G. ;
Rubbia, C. ;
Salmieri, D. ;
Rodilla, E. ;
Gutierrez, D. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2011, 36 (20) :12877-12886
[3]  
Abdel-Aal H., 1975, HYDROGEN ENERGY, P345
[4]  
[Anonymous], 2017, INT TAR TRAD DATAWEB
[5]   FactSage thermochemical software and databases, 2010-2016 [J].
Bale, C. W. ;
Belisle, E. ;
Chartrand, P. ;
Decterov, S. A. ;
Eriksson, G. ;
Gheribi, A. E. ;
Hack, K. ;
Jung, I. -H. ;
Kang, Y. -B. ;
Melancon, J. ;
Pelton, A. D. ;
Petersen, S. ;
Robelin, C. ;
Sangster, J. ;
Spencer, P. ;
Van Ende, M-A. .
CALPHAD-COMPUTER COUPLING OF PHASE DIAGRAMS AND THERMOCHEMISTRY, 2016, 54 :35-53
[6]   PYROLYSIS OF BENZENE [J].
BROOKS, CT ;
PEACOCK, SJ ;
REUBEN, BG .
JOURNAL OF THE CHEMICAL SOCIETY-FARADAY TRANSACTIONS I, 1979, 75 :652-662
[7]   Catalytic Hydrogen Production from Methane: A Review on Recent Progress and Prospect [J].
Chen, Luning ;
Qi, Zhiyuan ;
Zhang, Shuchen ;
Su, Ji ;
Somorjai, Gabor A. .
CATALYSTS, 2020, 10 (08)
[8]   Nonoxidative activation of methane [J].
Choudhary, TV ;
Aksoylu, E ;
Goodman, DW .
CATALYSIS REVIEWS-SCIENCE AND ENGINEERING, 2003, 45 (01) :151-203
[9]  
Dagle RA., 2017, OVERVIEW NATURAL GAS
[10]  
EIA, 2017, EIA AEO