Energetic and exergoeconomic analysis of different configurations of power and hydrogen generation systems using solar based organic Rankine cycle and PEM electrolyzer

被引:3
作者
Khani, H. Ghasem [1 ]
Nikian, M. [1 ]
Ghazi, M. [2 ]
机构
[1] Islamic Azad Univ, Dept Mech Engn, Takestan Branch, Takestan, Iran
[2] Islamic Azad Univ, Dept Petr Mat & Min Engn, Cent Tehran Branch, Tehran, Iran
关键词
ORC; Proton exchange membrane electrolyzer; Parabolic trough collectors; Cogeneration; MULTIOBJECTIVE OPTIMIZATION; THERMOECONOMIC ANALYSIS; EXERGY;
D O I
10.1016/j.renene.2024.121001
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Fossil fuels limitations and their environmental problems, forces finding a stable, clean and easy to store and transport energy source. Hydrogen produced by renewable energy has the above-mentioned advantages. In this manner the input energy for hydrogen production is provided from renewable resources. despite of its cost and low energy ratio solar energy is still considered as one of the best renewable methods for hydrogen production. ORC is a very suitable option for using low and medium temperature heat sources such as solar energy. In this research, energy, exergy and exergy-economic analysis for different configurations of power and hydrogen cogeneration systems using solar based ORC and PEM electrolyzer is implemented and results compared in different conditions in EES. Parametric analysis has been applied and the best cycle conditions have been obtained and analyzed in terms of energy, exergy and exergeoeconomics. The main results of the research showed that double-pressurization of the ORC, despite of reducing the process cost, has not a significant thermodynamic efficiency due to the increase in exergy losses (about 12 % in the range of condenser temperature changes and 37 % in the range of solar fluid inlet temperature changes) compared to the power and hydrogen cogeneration system with the simple ORC. Also, adding an intermediate heat exchanger to the existing ORC in the power and hydrogen cogeneration system, while maintaining and sometimes increasing the thermodynamic efficiency compared to the simple cycle, in some ranges of changes in the functional parameters of the cogeneration cycle, leads to a reduction in the cost of power production compared to the cycles based on the simple ORC (for example, between 1 % and 22% cost reduction over the range of turbine inlet pressure changes), which is very significant.
引用
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页数:12
相关论文
共 17 条
[1]   Energetic and exergoeconomic assessment of a multi-generation energy system based on indirect use of geothermal energy [J].
Akrami, Ehsan ;
Chitsaz, Ata ;
Nami, Hossein ;
Mahmoudi, S. M. S. .
ENERGY, 2017, 124 :625-639
[2]   Thermodynamic assessment of a cogeneration system with CSP Driven-Brayton and Rankine cycles for electric power and hydrogen production in the framework of the energy and water nexus [J].
Assareh, Ehsanolah ;
Assareh, Mohammad ;
Alirahmi, Seyed Mojtaba ;
Shayegh, Milad ;
Wang, Fuqiang ;
Behrang, Mohammadali ;
Wang, Xiaolin .
ENERGY NEXUS, 2022, 5
[3]  
Balasubramanian R, 2022, Journal of Human Earth and Future, V3, P195, DOI [10.28991/hef-2022-03-02-05, 10.28991/HEF-2022-03-02-05, DOI 10.28991/HEF-2022-03-02-05]
[4]   Multi-generation system incorporated with PEM electrolyzer and dual ORC based on biomass gasification waste heat recovery: Exergetic, economic and environmental impact optimizations [J].
Boyaghchi, Fateme Ahmadi ;
Chavoshi, Mansoure ;
Sabeti, Vajiheh .
ENERGY, 2018, 145 :38-51
[5]   Dynamical modeling and coordinated control design of a multimodular nuclear power-hydrogen cogeneration plant [J].
Dong, Zhe .
ENERGY CONVERSION AND MANAGEMENT, 2022, 272
[6]   Development and multi-objective optimization of geothermal-based organic Rankine cycle integrated with thermoelectric generator and proton exchange membrane electrolyzer for power and hydrogen production [J].
Gholamian, E. ;
Habibollahzade, A. ;
Zare, V. .
ENERGY CONVERSION AND MANAGEMENT, 2018, 174 :112-125
[7]   Reprint of: Solar hydrogen production and its development in China [J].
Guo, L. J. ;
Zhao, L. ;
Jing, D. W. ;
Lu, Y. J. ;
Yang, H. H. ;
Bai, B. F. ;
Zhang, X. M. ;
Ma, L. J. ;
Wu, X. M. .
ENERGY, 2010, 35 (11) :4421-4438
[8]  
Kalogirou SA, 2009, SOLAR ENERGY ENGINEERING: PROCESSES AND SYSTEMS, P1
[9]   THERMOECONOMIC ANALYSIS AND MULTI-OBJECTIVE OPTIMIZATION OF AN INTEGRATED SOLAR SYSTEM FOR HYDROGEN PRODUCTION USING PARTICLE SWARM OPTIMIZATION ALGORITHM [J].
Keykhah, Sajjad ;
Assareh, Ehsanolah ;
Moltames, Rahim ;
Taghipour, Abbas ;
Barati, Hassan .
JOURNAL OF THERMAL ENGINEERING, 2021, 7 (04) :746-760
[10]   Exergy and exergoeconomic evaluation of hydrogen and distilled water production via combination of PEM electrolyzer, RO desalination unit and geothermal driven dual fluid ORC [J].
Kianfard, Hossein ;
Khalilarya, Shahram ;
Jafarmadar, Samad .
ENERGY CONVERSION AND MANAGEMENT, 2018, 177 :339-349