The Key Techno-Economic and Manufacturing Drivers for Reducing the Cost of Power-to-Gas and a Hydrogen-Enabled Energy System

被引:33
|
作者
Bristowe, George [1 ]
Smallbone, Andrew [1 ]
机构
[1] Univ Durham, Dept Engn, Durham DH1 3LE, England
来源
HYDROGEN | 2021年 / 2卷 / 03期
基金
英国工程与自然科学研究理事会;
关键词
hydrogen; electrolysis; techno-economics; energy system; levelised cost of hydrogen; WATER ELECTROLYSIS; CYCLE;
D O I
10.3390/hydrogen2030015
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
Water electrolysis is a process which converts electricity into hydrogen and is seen as a key technology in enabling a net-zero compatible energy system. It will enable the scale-up of renewable electricity as a primary energy source for heating, transport, and industry. However, displacing the role currently met by fossil fuels might require a price of hydrogen as low as 1 $/kg, whereas renewable hydrogen produced using electrolysis is currently 10 $/kg. This article explores how mass manufacturing of proton exchange membrane (PEM) electrolysers can reduce the capital cost and, thus, make the production of renewable power to hydrogen gas (PtG) more economically viable. A bottom up direct manufacturing model was developed to determine how economies of scale can reduce the capital cost of electrolysis. The results demonstrated that (assuming an annual production rate of 5000 units of 200 kW PEM electrolysis systems) the capital cost of a PEM electrolysis system can reduce from 1990 $/kW to 590 $/kW based on current technology and then on to 431 $/kW and 300 $/kW based on the an installed capacity scale-up of ten- and one-hundred-fold, respectively. A life-cycle costing analysis was then completed to determine the importance of the capital cost of an electrolysis system to the price of hydrogen. It was observed that, based on current technology, mass manufacturing has a large impact on the price of hydrogen, reducing it from 6.40 $/kg (at 10 units units per year) to 4.16 $/kg (at 5000 units per year). Further analysis was undertaken to determine the cost at different installed capacities and found that the cost could reduce further to 2.63 $/kg and 1.37 $/kg, based on technology scale-up by ten- and one hundred-fold, respectively. Based on the 2030 (and beyond) baseline assumptions, it is expected that hydrogen production from PEM electrolysis could be used as an industrial process feed stock, provide power and heat to buildings and as a fuel for heavy good vehicles (HGVs). In the cases of retrofitted gas networks for residential or industrial heating solutions, or for long distance transport, it represents a more economically attractive and mass-scale compatible solution when compared to electrified heating or transport solutions.
引用
收藏
页码:273 / 300
页数:28
相关论文
共 50 条
  • [41] A techno-economic analysis of different options for cogenerating power in hydrogen plants based on natural gas reforming
    Corradetti, Alessandro
    Desideri, Umberto
    [J]. Proceedings of the ASME Turbo Expo 2006, Vol 2, 2006, : 343 - 357
  • [42] Techno-Economic Analysis of Hydrogen as a Storage Solution in an Integrated Energy System for an Industrial Area in China
    Zeng, Jincan
    Liu, Xiaoyu
    Liu, Minwei
    Liu, Xi
    Huang, Guori
    Yao, Shangheng
    He, Gengsheng
    Shang, Nan
    Guo, Fuqiang
    Wang, Peng
    [J]. ENERGIES, 2024, 17 (13)
  • [43] Techno-Economic Assessment of Green Hydrogen Production by an Off-Grid Photovoltaic Energy System
    Hassan, Qusay
    Abdulrahman, Imad Saeed
    Salman, Hayder M. M.
    Olapade, Olushola Tomilayo
    Jaszczur, Marek
    [J]. ENERGIES, 2023, 16 (02)
  • [44] Techno-Economic Assessment of a Hybrid Gas Tank Hot Water Combined Heat and Power System
    Skabelund, Brent B.
    Elio, Joseph
    Milcarek, Ryan J.
    [J]. SUSTAINABILITY, 2021, 13 (23)
  • [45] Techno-economic optimization of microgrid operation with integration of renewable energy, hydrogen storage, and micro gas turbine
    Banihabib, Reyhaneh
    Fadnes, Fredrik Skaug
    Assadi, Mohsen
    [J]. Renewable Energy, 2024, 237
  • [46] Techno-economic, energy, and exergy analyses of invasive weed gasification for hydrogen enriched producer gas production
    Nivash, V
    Sakthivadivel, D.
    Alaswad, A.
    Vigneshwaran, V. S.
    [J]. HELIYON, 2024, 10 (06)
  • [47] Techno-economic evaluation of a gas turbine-based power, water desalination and cooling system
    Zamzam, Morteza
    Namjoo, Amin
    Javaran, Ebrahim Jahanshahi
    [J]. DESALINATION AND WATER TREATMENT, 2020, 188 : 98 - 120
  • [48] Feasibility study and techno-economic assessment of power-to-gas (P2G) technology based on solid oxide electrolysis (SOE)
    Martsinchyk, Katsiaryna
    Martsinchyk, Aliaksandr
    Lazor, Monika
    Shuhayeu, Pavel
    Kupecki, Jakub
    Niemczyk, Anna
    Blesznowski, Marcin
    Milewskic, Jaroslaw
    [J]. JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2024, 354
  • [49] Techno-economic analysis of adiabatic four-stage CO2 methanation process for optimization and evaluation of power-to-gas technology
    Park, Sungho
    Choi, Kwangsoon
    Lee, Changhyeong
    Kim, Suhyun
    Yoo, Youngdon
    Chang, Daejun
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (41) : 21303 - 21317
  • [50] Optimal energy management and techno-economic assessment of hydrogen energy production system incorporated with photovoltaic and battery storage
    Bukar, Abba Lawan
    Chaitusaney, Surachai
    Kawabe, Kenichi
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 62 : 1139 - 1153