Reducing the cost of low-carbon hydrogen production via emerging chemical looping process

被引:14
|
作者
Argyris, Panagiotis Alexandros [1 ]
Wong, Jared [1 ]
Wright, Andrew [1 ]
Pereira, Luis M. C. [2 ]
Spallina, Vincenzo [1 ]
机构
[1] Univ Manchester, Dept Chem Engn, Manchester M13 9PL, England
[2] TotalEnergies OneTech France, CCS Program, R&D Line CO2&Sustainabil Platform, F-64018 Pau, France
基金
英国工程与自然科学研究理事会;
关键词
Chemical looping; CO2; capture; BlueH2; production; Techno-economic analysis; PACKED-BED REACTORS; OXYGEN CARRIERS; INTEGRATION; COMBUSTION; NI; CU;
D O I
10.1016/j.enconman.2022.116581
中图分类号
O414.1 [热力学];
学科分类号
摘要
A thorough techno-economic analysis where inherent carbon capture is examined against state-of-the-art blue hydrogen production configurations for large (100,000 Nm3/h) and very large (333,000 Nm3/h) capacities. Advanced solvent-based technologies based on post-combustion capture and auto-thermal reformer combined with a gas heated reformer are simulated with process flowsheet software and compared with the emerging chemical looping process. A network of dynamically operated packed bed reactors has been designed and modelled using an in-house code and key parameters generating uncertainties in the results have been examined in a sensitivity analysis. The chemical looping reforming process presents a higher net reforming efficiency than the benchmark cases (8.2 % higher at large scale and 1.5 % higher at very large scale) ranged 75.4-75.7 % while the specific energy for CO2 avoidance is negative in the range of -0.78 to -0.85 MJ/kgCO2. In the carbon capture cases, the chemical looping reforming in packed beds technology generated a levelised cost of hydrogen of 168.9 pound/kNm3H2 for the large scale and 159.1 pound/kNm3H2 for the very large scale, with the values for the benchmark cases being higher at 196.4 and 166.6 pound/kNm3H2, respectively while the levelised cost of hydrogen values are 1 % higher in the benchmark cases where carbon emission price is accounted for. The carbon capture ratio is 99.9 % for the chemical looping reforming cases compared to 90-91 % for the benchmark ones, thus providing a significant foreground for the scale-up and implementation of chemical looping reforming technologies for hydrogen production.
引用
收藏
页数:13
相关论文
共 50 条
  • [1] Research progress of chemical looping technology for low-carbon hydrogen generation
    Zheng H.
    Sun Z.
    Zeng L.
    Zhongnan Daxue Xuebao (Ziran Kexue Ban)/Journal of Central South University (Science and Technology), 2021, 52 (01): : 313 - 329
  • [2] Hydrogen and Power Cogeneration Based on Chemical Looping Combustion: Is It Capable of Reducing Carbon Emissions and the Cost of Production?
    He, Yangdong
    Zhu, Lin
    Li, Luling
    Liu, Gaihuan
    ENERGY & FUELS, 2020, 34 (03) : 3501 - 3512
  • [3] Low-carbon hydrogen, power and heat production based on steam methane reforming and chemical looping combustion
    Zare, Ali Akbar Darabadi
    Yari, Mortaza
    Nami, Hossein
    Mohammadkhani, Farzad
    ENERGY CONVERSION AND MANAGEMENT, 2023, 279
  • [4] An efficient low-carbon hydrogen production system based on novel staged gasification coupling with chemical looping technology
    Zhang, Shengping
    Lv, Liangguo
    Liu, Luxuan
    Dai, Fei
    Sui, Jun
    ENERGY CONVERSION AND MANAGEMENT, 2025, 328
  • [5] Low-carbon hydrogen production via molten salt methane pyrolysis with chemical looping combustion: Emission reduction potential and techno-economic assessment
    He, Yangdong
    Song, Bin
    Jing, Xingsheng
    Zhou, Yin
    Chang, Honggang
    Yang, Wei
    Huang, Zeai
    FUEL PROCESSING TECHNOLOGY, 2023, 247
  • [6] Chemical Looping Clean Energy Technology Toward a Low-Carbon Future
    Cheng, Zhuo
    Joshi, Anuj
    Fan, Liang-Shih
    ENGINEERING, 2023, 29 : 42 - 44
  • [7] Three-reactors chemical looping process for hydrogen production
    Chiesa, Paolo
    Lozza, Giovanni
    Malandrino, Alberto
    Romano, Matteo
    Piccolo, Vincenzo
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (09) : 2233 - 2245
  • [8] Hydrogen production via chemical looping dry reforming of methane: Process modeling and systems analysis
    Mantripragada, Hari C.
    Veser, Gotz
    AICHE JOURNAL, 2022, 68 (05)
  • [9] Development and techno-economic analyses of a novel hydrogen production process via chemical looping
    Bahzad, Husain
    Shah, Nilay
    Mac Dowell, Niall
    Boot-Handford, Matthew
    Soltani, Salman Masoudi
    Minh Ho
    Fennell, Paul S.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (39) : 21251 - 21263
  • [10] Hydrogen production from vegetable oil via a chemical looping process with hematite oxygen carriers
    Wei, Guo-Qiang
    Zhao, Wei-Na
    Meng, Jun-Guang
    Feng, Jie
    Li, Wen-Ying
    He, Fang
    Huang, Zhen
    Yi, Qun
    Du, Zhen-Yi
    Zhao, Kun
    Zhao, Zeng-Li
    Li, Hai-Bin
    JOURNAL OF CLEANER PRODUCTION, 2018, 200 : 588 - 597