Technoeconomic assessment of hydrogen production from natural gas pyrolysis in molten bubble column reactors

被引:26
作者
Angikath, Fabiyan [1 ]
Abdulrahman, Faseeh [1 ]
Yousry, Ahmed [2 ]
Das, Ratul [2 ]
Saxena, Saumitra [1 ]
Behar, Omar [1 ]
Alhamed, Haytham [1 ]
Altmann, Thomas [2 ]
Dally, Bassam [1 ]
Sarathy, S. Mani [1 ]
机构
[1] King Abdullah Univ Sci & Technol, Clean Combust Res Ctr, Phys Sci & Engn Div PSE, Thuwal 239556900, Saudi Arabia
[2] ACWA Power, Innovat & New Technol, 41st Floor,1 Tower,Sheikh Zayed Rd, Dubai, U Arab Emirates
关键词
Natural gas pyrolysis; Methane pyrolysis; Hydrogen; Molten metal; Molten salt; Techno-economic assessment; METHANE PYROLYSIS; THERMAL-DECOMPOSITION; CATALYTIC DECOMPOSITION; MEMBRANES; CRACKING; GALLIUM; ENERGY; MODEL;
D O I
10.1016/j.ijhydene.2023.07.308
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Natural gas pyrolysis to produce carbon and hydrogen, known as "turquoise hydrogen, using molten metals and salts is a promising route to clean hydrogen production. Methane pyrolysis produces significantly less or near-zero CO2. Additionally, the solid carbon can be separated and sold as a valuable co-product, making industrial-scale production of hydrogen via pyrolysis economically attractive. To better understand the potential of turquoise hydrogen, this study presents a comparative techno-economic assessment of molten media pyrolysis processes in bubble column reactors using Ni0.27Bi0.73, Ga, and KCl -MnCl2 (33:67). The study evaluates techno-economic assessment with a clear understanding of kinetics of natural gas pyrolysis and reactor process modeling. According to the modeling results, Ga had the lowest reactor cost and total bare erected cost. Nevertheless, the pyrolysis process that used inexpensive KCl-MnCl2 molten salt was more economically advantageous. Due to uncertainties in the density separation of solid carbon in the molten salt at temperatures above 1000 degrees C, Ni0.27Bi0.73 was selected as the promising molten medium for the long term. Sensitivity analyses were carried out to assess the impact of the costs of natural gas, hydrogen, and electricity on the industrial concept. In regions where gas is produced, such as Saudi Arabia, mature molten pyrolysis plants that use grid electricity at a rate of $48/MWh and solar photovoltaic systems with storage at a rate of $24/MWh can be economically feasible at natural gas prices of $132/ton and $198/ton, respectively, even if carbon is not sold. The cost of producing turquoise H2 is comparable to the global average for grey H2 and selling carbon can generate additional revenue or improve the profitability of the plant. The net energy demand of the molten pyrolysis plant is found to be approximately 21% of the energy requirement for current methods of green hydrogen production through PEM (proton exchange membrane) electrolysis. (c) 2023 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:246 / 262
页数:17
相关论文
共 78 条
[1]  
A. Energy, 2022, About us
[2]   Development of methane decarbonisation based on liquid metal technology for CO2-free production of hydrogen [J].
Abanades, Alberto ;
Rathnam, Renu Kumar ;
Geissler, Tobias ;
Heinzel, Annette ;
Mehravaran, Kian ;
Mueller, George ;
Plevan, Michael ;
Rubbia, Carlo ;
Salmieri, Delia ;
Stoppel, Leonid ;
Stueckrad, Stefan ;
Weisenburger, Alfons ;
Wenninger, Horst ;
Wetzel, Thomas .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2016, 41 (19) :8159-8167
[3]   Hydrogen production by thermocatalytic decomposition of methane using a fixed bed activated carbon in a pilot scale unit: Apparent kinetic, deactivation and diffusional limitation studies [J].
Abbas, Hazzim F. ;
Daud, W. M. A. Wan .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (22) :12268-12276
[4]   Techno-economic analysis for clean hydrogen production using solar energy under varied climate conditions [J].
Abbas, Majid K. ;
Hassan, Qusay ;
Tabar, Vahid Sohrabi ;
Tohidi, Sajjad ;
Jaszczur, Marek ;
Abdulrahman, Imad Saeed ;
Salman, Hayder M. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2023, 48 (08) :2929-2948
[5]  
Ahsan M., 2016, Pacific Sci Rev. A Nat. Sci. Eng, V18, P47, DOI DOI 10.1016/J.PSRA.2016.07.001
[6]   Production of COx-free hydrogen by the thermal decomposition of methane over activated carbon: Catalyst deactivation [J].
Al-Hassani, Amjed A. ;
Abbas, Hazzim F. ;
Daud, W. M. A. Wan .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (27) :14783-14791
[7]   Hydrogen production via decomposition of methane over activated carbons as catalysts: Full factorial design [J].
Al-Hassani, Amjed A. ;
Abbas, Hazzim F. ;
Daud, W. M. A. Wan .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (13) :7004-7014
[8]   Hydrogen selective membranes: A review of palladium-based dense metal membranes [J].
Al-Mufachi, N. A. ;
Rees, N. V. ;
Steinberger-Wilkens, R. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2015, 47 :540-551
[9]   IMPACT OF CRUDE-OIL PRODUCTION ON THE PETROCHEMICAL INDUSTRY IN SAUDI-ARABIA [J].
ALSALEH, MA ;
DUFFUAA, SO ;
ALMARHOUN, MA ;
ALZAYER, JA .
ENERGY, 1991, 16 (08) :1089-1099
[10]   Process improvement of sea water reverse osmosis (SWRO) and subsequent decarbonization [J].
Altmann, Thomas ;
Das, Ratul .
DESALINATION, 2021, 499