Optimally Splitting Solar Spectrums by Concentrating Solar Spectrums Splitter for Hydrogen Production via Solid Oxide Electrolysis Cell

被引:0
作者
Lang, Shaocheng [1 ]
Yuan, Jinliang [1 ]
Zhang, Houcheng [2 ]
机构
[1] Ningbo Univ, Fac Maritime & Transportat, Ningbo 315211, Peoples R China
[2] Ningbo Univ Technol, Coll New Energy, Ningbo 315211, Peoples R China
关键词
solar energy; concentrating solar spectrums splitter; solid oxide electrolysis cell; concentrating photovoltaic; parametric study; HIGH-TEMPERATURE ELECTROLYSIS; STEAM ELECTROLYSIS; POWER-GENERATION; EXERGY ANALYSIS; ENERGY; PERFORMANCE; MODEL; SYSTEM; DESIGN; OPTIMIZATION;
D O I
10.3390/en17092067
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The concentrating solar spectrums splitter (CSSS)-driven solid oxide electrolysis cell (SOEC) is an attractive technology for green hydrogen production. The CSSS mainly comprises a concentrating photovoltaic (CPV), which converts sunlight with shorter wavelengths into electricity, and a concentrating solar collector (CSC), which converts the remaining sunlight into heat. However, the optimal splitting of the solar spectrums is a critical challenge that directly impacts the efficiency and normal operation of the SOEC. To address this challenge, a mathematical model integrating the CSSS with the SOEC is developed based on principles from thermodynamics and electrochemistry. By analyzing the requirements of electricity and heat for the SOEC, the model determines the optimal configuration and operational parameters. The results show that the anode-supported type, higher operating temperature, larger inlet flow rate of water, higher operating pressure of the SOEC, higher operating temperature of the CSC, and larger electric current of the CPV contribute to allocating more solar spectrums to the CSC for heat generation. However, the greater effectiveness of the heat exchangers, higher operating temperature, and larger optical concentration ratio of the CPV exhibit contrasting effects on the spectrum allocation. The obtained results provide valuable theoretical guidance for designing and running the CSSS for hydrogen production through SOEC.
引用
收藏
页数:20
相关论文
共 85 条
[1]   The potential role of hydrogen as a sustainable transportation fuel to combat global warming [J].
Acar, Canan ;
Dincer, Ibrahim .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (05) :3396-3406
[2]   Performance analysis of a co-generation system using solar energy and SOFC technology [J].
Akikur, R. K. ;
Saidur, R. ;
Ping, H. W. ;
Ullah, K. R. .
ENERGY CONVERSION AND MANAGEMENT, 2014, 79 :415-430
[3]   HYDROGEN-PRODUCTION FROM HIGH-TEMPERATURE STEAM ELECTROLYSIS USING SOLAR-ENERGY [J].
ARASHI, H ;
NAITO, H ;
MIURA, H .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1991, 16 (09) :603-608
[4]   The criticality of growth, urbanization, electricity and fossil fuel consumption to environment sustainability in Africa [J].
Asongu, Simplice A. ;
Agboola, Mary Oluwatoyin ;
Alola, Andrew Adewale ;
Bekun, Festus Victor .
SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 712
[5]   Potential importance of hydrogen as a future solution to environmental and transportation problems [J].
Balat, Mustafa .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (15) :4013-4029
[6]  
BALTHASAR W, 1984, INT J HYDROGEN ENERG, V9, P649, DOI 10.1016/0360-3199(84)90263-5
[7]   Concurrent hydrogen and water production from brine water based on solar spectrum splitting: Process design and thermoeconomic analysis [J].
Baniasadi, Ehsan .
RENEWABLE ENERGY, 2017, 102 :50-64
[8]  
Basha CHH, 2017, INT J RENEW ENERGY R, V7, P1570
[9]   The Effects of Operating Conditions on the Performance of a Solid Oxide Steam Electrolyser: A Model-Based Study [J].
Cai, Q. ;
Luna-Ortiz, E. ;
Adjiman, C. S. ;
Brandon, N. P. .
FUEL CELLS, 2010, 10 (06) :1114-1128
[10]  
Cai Q., 2012, P 2012 INT C CLEAN G, P72