Production of Hydrogen and Solid Carbon by Methane Decomposition under Pressurized Conditions Using a Rotary Reactor and Purification of Yielded Hydrogen by Hydrogen Separation Membrane

被引:0
作者
Inaba, Megumu [1 ]
Kuramoto, Koji [1 ]
Soneda, Yasushi [1 ]
机构
[1] Natl Inst Adv Ind Sci & Technol, Tsukuba, Ibaraki 3058569, Japan
关键词
COX-FREE HYDROGEN; SWING ADSORPTION; CATALYTIC DECOMPOSITION; THERMAL-DECOMPOSITION; FE CATALYSTS; OPTIMIZATION; PALLADIUM; DIOXIDE; NANOCARBON; NANOTUBES;
D O I
暂无
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A pressurized rotary reactor was used to produce hydrogen and solid carbon through thermochemical decomposition of methane using an Fe catalyst. Here, the ratio of (CH4 flow rate)/pressure was kept constant. Pressurized conditions caused a lower initial methane conversion, but the decrease in methane conversion over time was suppressed, and the conversion was ultimately higher than that at ambient pressure after a long reaction time. The deposited carbon was formed as carbon nanofibers and carbon nano-onions. At higher pressure, the crystallinity of the deposited carbon also slightly increased. Unreacted methane, CO, and CO2 may coexist in the exhaust gas in addition to the product hydrogen. In this study, the purification of hydrogen was carried out by introducing the product gas obtained from the reaction at 5 atm directly into the commercially available hydrogen separation membrane.
引用
收藏
页码:4306 / 4316
页数:11
相关论文
共 50 条
[21]   Hydrogen production by catalytic methane decomposition: Carbon materials as catalysts or catalyst supports [J].
Zhang, Jianbo ;
Li, Xing ;
Chen, Huiyong ;
Qi, Meng ;
Zhang, Guorong ;
Hu, Haoquan ;
Ma, Xiaoxun .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (31) :19755-19775
[22]   Hydrogen production by methane decomposition: Analysis of thermodynamic carbon properties and process evaluation [J].
Marquardt, T. ;
Bode, A. ;
Kabelac, S. .
ENERGY CONVERSION AND MANAGEMENT, 2020, 221
[23]   Natural Fe-based catalysts for the production of hydrogen and carbon nanomaterials via methane decomposition [J].
Silva, Juliana Alves ;
Oliveira Santos, Joao Batista ;
Torres, Daniel ;
Pinilla, Jose Luis ;
Suelves, Isabel .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (71) :35137-35148
[24]   Methane decomposition for hydrogen production: A comprehensive review on catalyst selection and reactor systems [J].
Raza, Jehangeer ;
Khoja, Asif Hussain ;
Anwar, Mustafa ;
Saleem, Faisal ;
Naqvi, Salman Raza ;
Liaquat, Rabia ;
Hassan, Muhammad ;
Javaid, Rahat ;
Qazi, Umair Yaqub ;
Lumbers, Brock .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2022, 168
[25]   Hydrogen Production by Carbon-Catalyzed Methane Decomposition Via Thermogravimetry [J].
Shilapuram, Vidyasagar ;
Ozalp, Nesrin .
JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 2017, 139 (01)
[26]   Hydrogen production by methane decomposition: Origin of the catalytic activity of carbon materials [J].
Serrano, D. P. ;
Botas, J. A. ;
Fierro, J. L. G. ;
Guil-Lopez, R. ;
Pizarro, P. ;
Gomez, G. .
FUEL, 2010, 89 (06) :1241-1248
[27]   Catalytic performance of modified carbon black on methane decomposition for hydrogen production [J].
Zhou, Niuhu ;
Zhao, Donglin ;
Su, Qin ;
Li, Qiongguang ;
Zha, Weiwei ;
Feng, Shaojie .
RSC ADVANCES, 2024, 14 (22) :15656-15663
[28]   Performance analysis of hydrogen iodide decomposition membrane reactor under different sweep modes [J].
Kong, Rui ;
Chen, Lingen ;
Xia, Shaojun ;
Li, Penglei ;
Ge, Yanlin .
ENERGY CONVERSION AND MANAGEMENT, 2021, 244
[29]   Recent Progress in the Catalytic Decomposition of Methane in a Fluidized Bed for Hydrogen and Carbon Material Production [J].
Bae, Keon ;
Go, Kang Seok ;
Kim, Woohyun ;
Lee, Doyeon .
KOREAN CHEMICAL ENGINEERING RESEARCH, 2023, 61 (02) :175-188
[30]   Model Predictive Control for Hydrogen Production in a Membrane Methane Steam Reforming Reactor [J].
Kyriakides, Alexios-Spyridon ;
Seferlis, Panos ;
Voutetakis, Spyros ;
Papadopoulou, Simira .
PRES2016: 19TH INTERNATIONAL CONFERENCE ON PROCESS INTEGRATION, MODELING AND OPTIMIZATION FOR ENERGY SAVINGS AND POLLUTION REDUCTION, 2016, 52 :991-996