Feasibility of high efficient solar hydrogen generation system integrating photovoltaic cell/photon-enhanced thermionic emission and high-temperature electrolysis cell

被引:55
|
作者
Wang, Hongsheng [1 ,2 ]
Kong, Hui [3 ,4 ]
Pu, Zhigang [1 ]
Li, Yao [1 ]
Hu, Xuejiao [1 ,5 ]
机构
[1] Wuhan Univ, Sch Power & Mech Engn, MOE Key Lab Hydrodynam Machinery Transients Wuhan, Minist Educ, Wuhan 430072, Hubei, Peoples R China
[2] Univ Tokyo, Sch Engn, Dept Chem Syst Engn, Bunkyo Ku, 7-3-1 Hongo, Tokyo 1138656, Japan
[3] Tsinghua Univ, Dept Thermal Engn, Tsinghua BP Clean Energy Ctr, State Key Lab Power Syst, Beijing 100084, Peoples R China
[4] China Energy Technol & Econ Res Inst, Res Garden Shenhua Innovat Base, Res Bldg 1,Future Sci Pk, Beijing 102211, Peoples R China
[5] Wuhan Univ, Hubei Int Sci & Technol Cooperat Base Sustainable, Wuhan 430079, Hubei, Peoples R China
基金
中国博士后科学基金; 中国国家自然科学基金;
关键词
Solar water splitting; Hydrogen production; Photovoltaic and thermal hybrid utilization; High temperature electrolysis; Photon-enhanced thermionic emission cell (PETE); Solid oxide electrolysis cell (SOEC); THERMOCHEMICAL FUEL PRODUCTION; SOLID OXIDE ELECTROLYZER; WATER ELECTROLYSIS; POWER-GENERATION; HEAT; MODEL; PERFORMANCE; OPTIMIZATION; COMBINATION; STRATEGY;
D O I
10.1016/j.enconman.2020.112699
中图分类号
O414.1 [热力学];
学科分类号
摘要
The integration of solar photovoltaic (PV) cell and high-temperature electrolysis cell to produce hydrogen is a promising means of solar energy storage and hydrogen harvesting. In this paper, a novel hydrogen production system is proposed by combining PV cell and photon-enhanced thermionic emission cell (PETE) with the solid oxide electrolysis cell (SOEC). The inlet steam of SOEC could be heated to a high temperature ranging from 800 degrees C to 1000 degrees C by the waste heat recovery of the PV cell and PETE module. The high-temperature steam and the electricity produced by PV cell and PETE module are fed into the SOEC together for H-2 generation. High temperature electrolysis could decrease the Gibbs free energy required in water splitting, leading to less electricity cost at the expense of consuming more heat. PV cells can also be more efficient in a relatively low operation temperature by the waste heat recovery, and more electricity would be generated for hydrogen production. The first-law thermodynamic efficiency, solar exergy efficiency and solar-to-hydrogen efficiency (STH efficiency) of this proposed system could reach 77.05%, 55.99%, and 29.61%, respectively, which are expected to provide a theoretic basis for the research and application of convenient and efficient solar hydrogen generation.
引用
收藏
页数:12
相关论文
共 34 条
  • [21] Solar hydrogen production: Techno-economic analysis of a parabolic dish-supported high-temperature electrolysis system
    Mastropasqua, Luca
    Pecenati, Ilaria
    Giostri, Andrea
    Campanari, Stefano
    APPLIED ENERGY, 2020, 261
  • [22] A PRELIMINARY THERMODYNAMIC MODEL OF HYDROGEN GENERATION USING SOLID OXIDE ELECTROLYSIS CELL (SOEC) COUPLED WITH A HIGH-TEMPERATURE GAS-COOLED REACTOR
    Gao Wenxiu
    Liu Xiongbin
    Zhou Zhende
    Li Xiaowei
    PROCEEDINGS OF 2024 31ST INTERNATIONAL CONFERENCE ON NUCLEAR ENGINEERING, VOL 4, ICONE31 2024, 2024,
  • [23] Performance evaluation and optimization of a distributed generation system integrating high-temperature proton exchange membrane fuel cell and recuperative-regenerative Organic Rankine Cycle
    Xu, Shiyi
    Leng, Shuang
    Xie, Junen
    Liu, Zekuan
    Li, Chengjie
    Wang, Jingyi
    Chen, Zhengjian
    Liao, Mei
    Qin, Jiang
    ENERGY, 2025, 319
  • [24] Comprehensive optimization of an integrated energy system for power, hydrogen, and freshwater generation using high-temperature PEM fuel cell (vol 56, 104181, 2024)
    Gharibzadeh, Soheil
    Motallebzadeh, Roghayyeh
    Jafarmadar, Samad
    Ebrahimpour, Abdulsalam
    CASE STUDIES IN THERMAL ENGINEERING, 2024, 60
  • [25] Design of modular electrolysis and modular high-efficiency fuel cell systems for green hydrogen production and power generation with low emission of carbon dioxide
    Kongjui, Waraporn
    Patthaveekongka, Weerawat
    Jeraputra, Chuttchaval
    Bumroongsri, Pornchai
    COMPUTERS & CHEMICAL ENGINEERING, 2025, 198
  • [26] CO2-FREE ELECTRICITY-GENERATION FROM COAL IN A HIGH-TEMPERATURE FUEL-CELL SYSTEM
    SEIFRITZ, W
    BRENNSTOFF-WARME-KRAFT, 1990, 42 (05): : 249 - &
  • [27] Analytical investigation of high temperature 1 kW solid oxide fuel cell system feasibility in methane hydrate recovery and deep ocean power generation
    Azizi, Mohammad Ali
    Brouwer, Jacob
    Dunn-Rankin, Derek
    APPLIED ENERGY, 2016, 179 : 909 - 928
  • [28] Ba0.5Sr0.5(Co0.8Fe0.2)1-xTaxO3-δ perovskite anode in solid oxide electrolysis cell for hydrogen production from high-temperature steam electrolysis
    Prasopchokkul, P.
    Seeharaj, P.
    Kim-Lohsoontorn, P.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (10) : 7023 - 7036
  • [29] 25.1%-Efficient Monolithic Perovskite/Silicon Tandem Solar Cell Based on a p-type Monocrystalline Textured Silicon Wafer and High-Temperature Passivating Contacts
    Nogay, G.
    Sahli, F.
    Werner, J.
    Monnard, R.
    Boccard, M.
    Despeisse, M.
    Haug, F-J
    Jeangros, Q.
    Ingenito, A.
    Ballif, C.
    ACS ENERGY LETTERS, 2019, 4 (04) : 844 - 845
  • [30] Exergoeconomic analysis and optimization of a novel hybrid cogeneration system: High-temperature proton exchange membrane fuel cell/Kalina cycle, driven by solar energy
    Sarabchi, N.
    Mahmoudi, S. M. Seyed
    Yari, M.
    Farzi, A.
    ENERGY CONVERSION AND MANAGEMENT, 2019, 190 : 14 - 33