Advancements in methane pyrolysis: A comprehensive review of parameters and molten catalysts in bubble column reactors

被引:2
作者
Gunarayu, Mathesh Rao [1 ]
Patah, Muhamad Fazly Abdul [1 ]
Daud, Wan Mohd Ashri Wan [1 ]
机构
[1] Univ Malaya, Fac Engn, Dept Chem Engn, Kuala Lumpur 50603, Malaysia
关键词
Methane pyrolysis; Hydrogen production; Molten metal catalysts; Operating parameters; Bubble column reactor; Gas-liquid interaction; NATURAL-GAS PYROLYSIS; HYDROGEN-PRODUCTION; HIGH-TEMPERATURE; MASS-TRANSFER; DECOMPOSITION; HYDRODYNAMICS; CRACKING; SYSTEM; SIZE; CONVERSION;
D O I
10.1016/j.rser.2024.115197
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Methane pyrolysis using molten catalysts in bubble column reactors is a promising method for hydrogen production without carbon emissions. This review analyses the role of molten metal and salt catalysts, as well as key operating parameters, including reaction temperature, methane concentration, gas hourly space velocity, superficial gas velocity, and bubble size, alongside the impact of refractory coatings and reactor design on process efficiency. The findings reveal that molten tin and gallium catalysts achieve methane conversion rates exceeding 90 % at temperatures above 1000 degrees C, while molten salts help obtain carbon with high purity and provide operational stability. Methane concentration range from 90 to 100 % is shown to be optimal for maximizing hydrogen yield. A methane flow rate range of 100-300 ml/min, combined with adequate reactor volume and molten catalyst bed area, enhances gas-liquid interaction and methane conversion. Smaller bubble sizes, around 0.5 mm, are most effective for improving surface area and mass transfer, accelerating reaction kinetics and boosting conversion rates. The use of refractory coatings extends reactor lifespan by mitigating corrosion and thermal stress, while optimized reactor design, including increased column height and adjusted orifice size, improves gas dispersion and reactor performance. This review uniquely bridges the gap between molten metal catalysts and reactor dynamics in methane pyrolysis, offering actionable insights for process optimization and industrial scalability. By highlighting overlooked synergies and operational parameters, this study provides a novel and prospective roadmap for advancing hydrogen production technology.
引用
收藏
页数:15
相关论文
共 95 条
[41]   Electrolyte and temperature effects in a rising bubble [J].
Mandalahalli, Manas M. ;
Lif, Johan ;
Mudde, Robert F. ;
Portela, Luis M. .
CHEMICAL ENGINEERING SCIENCE, 2023, 270
[42]   Literature review of the catalytic pyrolysis of methane for hydrogen and carbon production [J].
McConnachie, Mark ;
Konarova, Muxina ;
Smart, Simon .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2023, 48 (66) :25660-25682
[43]   Characterization of Bubble Size Distributions within a Bubble Column [J].
Mohagheghian, Shahrouz ;
Elbing, Brian R. .
FLUIDS, 2018, 3 (01)
[44]   A systematic review: The role of emerging carbon capture and conversion technologies for energy transition to clean hydrogen [J].
Mohammed, Sadah ;
Eljack, Fadwa ;
Al-Sobhi, Saad ;
Kazi, Monzure-Khoda .
JOURNAL OF CLEANER PRODUCTION, 2024, 447
[45]   Enhancing molten tin methane pyrolysis performance for hydrogen and carbon production in a hybrid solar/electric bubbling reactor [J].
Msheik M. ;
Rodat S. ;
Abanades S. .
International Journal of Hydrogen Energy, 2024, 49 :962-980
[46]   Experimental comparison of solar methane pyrolysis in gas-phase and molten-tin bubbling tubular reactors [J].
Msheik, Malek ;
Rodat, Sylvain ;
Abanades, Stephane .
ENERGY, 2022, 260
[47]   Methane Cracking for Hydrogen Production: A Review of Catalytic and Molten Media Pyrolysis [J].
Msheik, Malek ;
Rodat, Sylvain ;
Abanades, Stephane .
ENERGIES, 2021, 14 (11)
[48]   Decomposition of Methane to Carbon and Hydrogen: A Catalytic Perspective [J].
Musamali, Ronald ;
Isa, Yusuf Makaifi .
ENERGY TECHNOLOGY, 2019, 7 (06)
[49]   Methane pyrolysis characteristics for the practical application of hydrogen production system using permalloy plate catalyst [J].
Muto, Tomohiro ;
Asahara, Makoto ;
Miyasaka, Takeshi ;
Asato, Katsuo ;
Uehara, Takuma ;
Koshi, Mitsuo .
CHEMICAL ENGINEERING SCIENCE, 2023, 274
[50]   Shock-tube study of methane pyrolysis in the context of energy-storage processes [J].
Nativel, D. ;
Shu, B. ;
Herzler, J. ;
Fikri, M. ;
Schulz, C. .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2019, 37 (01) :197-204