Synergizing autothermal reforming hydrogen production and carbon dioxide electrolysis: Enhancing the competitiveness of blue hydrogen in sustainable energy systems

被引:2
|
作者
Noh, Wonjun [1 ]
Lee, Inkyu [1 ,2 ]
机构
[1] Pusan Natl Univ, Sch Chem Engn, 2 Busandaehak Ro,63beon Gil, Busan 46241, South Korea
[2] Pusan Natl Univ, Inst Environm & Energy, 2 Busandaehak Ro,63beon Gil, Pusan 46241, South Korea
关键词
Hydrogen production; Autothermal reforming; Process design; Bayesian optimization; Techno-economic assessment; CO2; electrolysis; CRYOGENIC AIR SEPARATION; CAPTURE; INTEGRATION;
D O I
10.1016/j.cej.2024.156688
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
With the global energy paradigm shifting towards renewable and sustainable systems, hydrogen is increasingly recognized as a promising energy carrier. In this transition, blue hydrogen is often considered a bridge solution to green hydrogen due to its economic vulnerability to carbon costs and environmental regulations related to life- cycle emissions. To expand the role of blue hydrogen, it is essential to enhance hydrogen yield, reduce production costs, and minimize greenhouse gas emissions during the production phase. This study proposes an integrated process for blue hydrogen production and CO2 2 electrolysis to enhance the competitiveness of blue hydrogen in sustainable energy systems. The focus of this study was to integrate autothermal reforming hydrogen production with solid oxide CO2 2 electrolysis and to determine the optimal configuration and operating conditions of the integrated process. The proposed process demonstrated superior performance in terms of energy efficiency, production cost, and environmental impact compared with conventional blue hydrogen production. Furthermore, considering the intermittency of renewable electricity and the uncertainties in CO2 2 electrolysis technology, the industrial feasibility of the proposed process was validated. The integration of autothermal reforming blue hydrogen production and CO2 2 electrolysis has four clear advantages: (i) the costly air separation and carbon capture units, which pose significant financial burdens in autothermal reforming blue hydrogen production, can be eliminated; (ii) the downstream separation, which is indispensable in a standalone CO2 2 electrolysis system, can be removed; (iii) utilization pathways for captured CO2 2 from blue hydrogen production have been proposed; and (iv) guidelines have been provided for the industrial utilization of CO2 2 electrolysis.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] Techno-economic and environmental performances of glycerol reforming for hydrogen and power production with low carbon dioxide emissions
    Cormos, Ana-Maria
    Cormos, Calin-Cristian
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (12) : 7798 - 7810
  • [33] The Effect of Corn Stover Carbon-Based Bimetallic Catalysts on the Depolarization Electrolysis Reaction of Sulfur Dioxide for Hydrogen Production
    Qi, Tiantian
    Li, Yingxia
    Liu, Feng
    Qu, Yongshui
    Wei, Quanyuan
    CATALYSTS, 2025, 15 (01)
  • [34] Hydrogen production from carbon dioxide reforming of methane over Ni-Co/MgO-ZrO2 catalyst: Process optimization
    Fan, Mun-Sing
    Abdullah, Ahmad Zuhairi
    Bhatia, Subhash
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2011, 36 (08) : 4875 - 4886
  • [35] Effect of in-situ carbon dioxide sorption on methane reforming by nickel-calcium composite catalyst for hydrogen production
    Chen, C. H.
    Yu, C. T.
    Chen, W. H.
    Kuo, H. T.
    INTERNATIONAL CONFERENCE ON SUSTAINABLE ENERGY AND GREEN TECHNOLOGY 2019, 2020, 463
  • [36] System-friendly process design: Optimizing blue hydrogen production for future energy systems
    Cloete, Schalk
    Arnaiz del Pozo, Carlos
    Jimenez Alvaro, Angel
    ENERGY, 2022, 259
  • [37] Carbon Dioxide-based Plastic Pyrolysis for Hydrogen Production Process: Sustainable Recycling of Waste Fishing Nets
    Kim, Yurim
    Lee, Seulgi
    Jung, Sungyup
    Lee, Jaewon
    Cho, Hyungtae
    KOREAN CHEMICAL ENGINEERING RESEARCH, 2024, 62 (01): : 36 - 43
  • [38] Energy and environmental assessment of industrial-scale hydrogen production: Comparison of steam methane reforming, electrolysis, and Cu-Cl cycles
    Kadam, Ramdas S.
    Sutar, Poonam R.
    Yadav, Ganapati D.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2025, 106 : 994 - 1005
  • [39] Efficient hydrogen production from solar energy and fossil fuel via water- electrolysis and methane-steam-reforming hybridization
    Sui, Jiyuan
    Chen, Zhennan
    Wang, Chen
    Wang, Yueyang
    Liu, Jianhong
    Li, Wenjia
    APPLIED ENERGY, 2020, 276
  • [40] Enhancing hydrogen production efficiency in carbon-assisted solid oxide electrolysis cells with dendritic channels anode and Optimal interface
    Wang, Runze
    Wang, Tengpeng
    Liu, Fangsheng
    Ma, Yuyao
    Wei, Tao
    Dong, Dehua
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2025, 112 : 208 - 214