Alkaline Water Electrolysis Powered by Renewable Energy: A Review

被引:438
作者
Brauns, Joern [1 ]
Turek, Thomas [1 ]
机构
[1] Tech Univ Clausthal, Inst Chem & Elect Proc Engn, Leibnizstr 17, D-38678 Clausthal Zellerfeld, Germany
关键词
alkaline water electrolysis; hydrogen; renewable energy; sustainable; dynamic; fluctuations; wind; solar; photovoltaic; limitations; HYDROGEN-PRODUCTION; SALTING-OUT; TO-GAS; IONIC LIQUIDS; OXYGEN EVOLUTION; STORAGE; PERFORMANCE; SYSTEM; ELECTRODES; EFFICIENCY;
D O I
10.3390/pr8020248
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Alkaline water electrolysis is a key technology for large-scale hydrogen production powered by renewable energy. As conventional electrolyzers are designed for operation at fixed process conditions, the implementation of fluctuating and highly intermittent renewable energy is challenging. This contribution shows the recent state of system descriptions for alkaline water electrolysis and renewable energies, such as solar and wind power. Each component of a hydrogen energy system needs to be optimized to increase the operation time and system efficiency. Only in this way can hydrogen produced by electrolysis processes be competitive with the conventional path based on fossil energy sources. Conventional alkaline water electrolyzers show a limited part-load range due to an increased gas impurity at low power availability. As explosive mixtures of hydrogen and oxygen must be prevented, a safety shutdown is performed when reaching specific gas contamination. Furthermore, the cell voltage should be optimized to maintain a high efficiency. While photovoltaic panels can be directly coupled to alkaline water electrolyzers, wind turbines require suitable converters with additional losses. By combining alkaline water electrolysis with hydrogen storage tanks and fuel cells, power grid stabilization can be performed. As a consequence, the conventional spinning reserve can be reduced, which additionally lowers the carbon dioxide emissions.
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页数:23
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共 94 条
  • [1] An assessment on seasonal analysis of wind energy characteristics and wind turbine characteristics
    Akpinar, EK
    Akpinar, S
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2005, 46 (11-12) : 1848 - 1867
  • [2] PV-Electrolyzer Plant: Models and Optimization Procedure
    Artuso, P.
    Zuccari, F.
    Dell'Era, A.
    Orecchini, F.
    [J]. JOURNAL OF SOLAR ENERGY ENGINEERING-TRANSACTIONS OF THE ASME, 2010, 132 (03): : 0310161 - 0310169
  • [3] Babu NR, 2013, J ENG SCI TECHNOL, V8, P493
  • [4] Emerging electrochemical energy conversion and storage technologies
    Badwal, Sukhvinder P. S.
    Giddey, Sarbjit S.
    Munnings, Christopher
    Bhatt, Anand I.
    Hollenkamp, Anthony F.
    [J]. FRONTIERS IN CHEMISTRY, 2014, 2
  • [5] Optimum Operating Conditions for Alkaline Water Electrolysis Coupled with Solar PV Energy System
    Balabel, Ashraf
    Zaky, Mohamed S.
    Sakr, Ismail
    [J]. ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING, 2014, 39 (05) : 4211 - 4220
  • [6] Photovoltaic solar energy conversion for hydrogen production by alkaline water electrolysis: Conceptual design and analysis
    Bhattacharyya, Rupsha
    Misra, Apurva
    Sandeep, K. C.
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2017, 133 : 1 - 13
  • [7] Current status of water electrolysis for energy storage, grid balancing and sector coupling via power-to-gas and power-to-liquids: A review
    Buttler, Alexander
    Spliethoff, Hartmut
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 82 : 2440 - 2454
  • [8] A comprehensive review on PEM water electrolysis
    Carmo, Marcelo
    Fritz, David L.
    Merge, Juergen
    Stolten, Detlef
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (12) : 4901 - 4934
  • [9] ESTIMATION OF STORAGE COSTS FOR LARGE HYDROGEN STORAGE FACILITIES
    CARPETIS, C
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1982, 7 (02) : 191 - 203
  • [10] Cell modelling and model parameters estimation techniques for photovoltaic simulator application: A review
    Chin, Vun Jack
    Salam, Zainal
    Ishaque, Kashif
    [J]. APPLIED ENERGY, 2015, 154 : 500 - 519