Systems design and techno-economic analysis of a novel cryogenic carbon capture process integrated with an air separation unit for autothermal reforming blue hydrogen production system

被引:19
作者
Noh, Wonjun [1 ]
Park, Sihwan [1 ]
Kim, Yurim [2 ,3 ]
Lee, Jaewon [3 ]
Kim, Junghwan [2 ]
Lee, Inkyu [1 ,4 ]
机构
[1] Pusan Natl Univ, Sch Chem Engn, 2 Busandaehak Ro 63beon gil, Busan 46241, South Korea
[2] Yonsei Univ, Dept Chem & Biomol Engn, 50 Yonsei Ro, Seoul 03722, South Korea
[3] Korea Inst Ind Technol, Low Carbon Energy Grp, 55 Jongga Ro, Ulsan, 44413, South Korea
[4] Pusan Natl Univ, Inst Environm & Energy, 2 Busandaehak ro,63beon gil, Busan 46241, South Korea
关键词
Process design; Blue hydrogen production; Autothermal reforming; Air separation unit; Cryogenic carbon capture; Techno-economic analysis; DIOXIDE CAPTURE; CO2; CAPTURE; TECHNOLOGIES; PLANTS; HEAT;
D O I
10.1016/j.jclepro.2024.142341
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In the transition of the global energy paradigm toward decarbonization, hydrogen is expected to play a crucial role as an energy vector. To enhance the sustainability of hydrogen as an energy source, it is important to reduce costs and carbon emissions in the hydrogen production. Among various hydrogen production technologies, the autothermal reforming (ATR)-based blue hydrogen production method can stand out as a promising option in terms of both economic and environmental considerations. However, there are several bottlenecks: (i) ATR requires an air separation unit that increases the cost burden, and (ii) conventional amine-based carbon capture method consumes a significant amount of energy. To address these bottlenecks, this study proposes a novel cryogenic carbon capture process for ATR-based blue hydrogen production. In the proposed process, air separation unit are utilized not only for oxygen production but also for carbon capture. The compressed air from the air separation unit provides cooling energy to the mixture gas, leading to solidification and separation of carbon dioxide. Despite imposing an additional burden on the air separation unit, it significantly reduces the energy and cost associated with carbon capture. Consequently, there exists a trade -off relationship between the increased load on the air separation unit and the decreased load in carbon capture. This trade -off was evaluated by comparing it with the conventional absorption -based carbon capture process in terms of energy and economic aspects. The proposed process exhibits a 36.4% reduction in total energy consumption, with a particularly approximately 49.5% decrease in the energy consumed for carbon capture (0.278 kW h/kg-CO 2 ). The economic performance indicates an 11% decrease in the levelized cost of hydrogen (1.62$/kg-H 2 ), and a 45.3% decrease in CO 2 avoidance cost (40.1$/kg-CO 2 ). The captured solid CO 2 can offer advantages during storage and transportation. Furthermore, the potential utilization of cooling energy of solid CO 2 from an end-user perspective is expected to contribute to the establishment of a new industrial value chain.
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页数:15
相关论文
共 62 条
[1]  
[Anonymous], 2022, WORLD EN OUTL
[2]   Optimal design of an MDEA CO2 capture plant for low-carbon hydrogen production - A rigorous process optimization approach [J].
Antonini, Cristina ;
Perez-Calvo, Jose-Francisco ;
van der Spek, Mijndert ;
Mazzotti, Marco .
SEPARATION AND PURIFICATION TECHNOLOGY, 2021, 279
[3]   A comprehensive review on hydrogen production and utilization in North America: Prospects and challenges [J].
Avargani, Vahid Madadi ;
Zendehboudi, Sohrab ;
Saady, Noori M. Cata ;
Dusseault, Maurice B. .
ENERGY CONVERSION AND MANAGEMENT, 2022, 269
[4]   Date palm waste gasification in downdraft gasifier and simulation using ASPEN HYSYS [J].
Bassyouni, M. ;
ul Hasan, Syed Waheed ;
Abdel-Aziz, M. H. ;
Abdel-hamid, S. M. -S. ;
Naveed, Shahid ;
Hussain, Ahmed ;
Ani, Farid Nasir .
ENERGY CONVERSION AND MANAGEMENT, 2014, 88 :693-699
[5]   Exergoenvironmental analysis of methanol production by steam reforming and autothermal reforming of natural gas [J].
Blumberg, Timo ;
Lee, Young Duk ;
Morosuk, Tatiana ;
Tsatsaronis, George .
ENERGY, 2019, 181 :1273-1284
[6]   Membrane technologies for CO2 separation [J].
Brunetti, A. ;
Scura, F. ;
Barbieri, G. ;
Drioli, E. .
JOURNAL OF MEMBRANE SCIENCE, 2010, 359 (1-2) :115-125
[7]   Perspective of the role of hydrogen in the 21st century energy transition [J].
Capurso, T. ;
Stefanizzi, M. ;
Torresi, M. ;
Camporeale, S. M. .
ENERGY CONVERSION AND MANAGEMENT, 2022, 251
[8]   Hybrid systems design for blue and green hydrogen co-production: Integration of autothermal reforming with solid oxide electrolysis [J].
Cho, Seoyeon ;
Noh, Wonjun ;
Lee, Inkyu .
ENERGY CONVERSION AND MANAGEMENT, 2024, 300
[9]   Carbon-neutral hydrogen production from natural gas via electrified steam reforming: Techno-economic-environmental perspective [J].
Do, Thai Ngan ;
Kwon, Hweeung ;
Park, Minseong ;
Kim, Changsu ;
Kim, Yong Tae ;
Kim, Jiyong .
ENERGY CONVERSION AND MANAGEMENT, 2023, 279
[10]   Optimal design and integration of a cryogenic Air Separation Unit (ASU) with Liquefied Natural Gas (LNG) as heat sink, thermodynamic and economic analyses [J].
Ebrahimi, Armin ;
Ziabasharhagh, Masoud .
ENERGY, 2017, 126 :868-885