Energy, exergy, exergoeconomic, and exergoenvironmental analysis of an innovative solar-geothermal-gas driven polygeneration system for combined power, hydrogen, hot water, and freshwater production

被引:115
作者
Manesh, M. H. Khoshgoftar [1 ,2 ]
Rabeti, S. A. Mousavi [1 ]
Nourpour, M. [1 ,2 ]
Said, Z. [3 ]
机构
[1] Univ Qom, Energy Environm & Biol Syst Res Lab EEBRlab, Div Thermal Sci & Energy Syst, Dept Mech Engn,Fac Technol & Engn, Qom, Iran
[2] Ctr Environm Res, Qom, Iran
[3] Univ Sharjah, Sustainable & Renewable Energy Engn Dept, Sharjah 27272, U Arab Emirates
关键词
ORC; Humidification-dehumidification; Solar and geothermal; Polygeneration; ICE; Hydrogen production; ORGANIC RANKINE-CYCLE; INTEGRATED-SYSTEM; THERMODYNAMIC ANALYSIS; OPTIMIZATION;
D O I
10.1016/j.seta.2021.101861
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In the present work, an innovative solar-geothermal-natural gas-driven polygenration system is presented. It consists of using organic Rankine cycle, Internal Combustion Engine, Polymer Electrolyte Membrane, and Humidification-Dehumidification desalination plant to produce power, hydrogen, hot water, and freshwater. Energy, Exergy, Exergoeconomic, and Exergoenvironmental (4E) analyses have been performed for the proposed system. 4E analyses can provide a comprehensive overview of the proposed system. In addition, sensitivity analysis for the system's main parameters has been done to evaluate the system. Also, nine organic fluids were used and compared based on 4E analyses. The results show that energy and exergy efficiencies and total annual cost and environmental impacts of the system are 23.87%, 28.21%, 0.144 $/kWh, and 0.024 Pts/kWh. Also, the average production of freshwater is 4.67 m(3)/day, and the production of hydrogen and hot water is estimated at 1.85 kg/h and 1.31 kg/s, respectively. R141b is the best fluid for the organic Rankine section.
引用
收藏
页数:22
相关论文
共 46 条
[1]   Energy and exergy analyses of hydrogen production via solar-boosted ocean thermal energy conversion and PEM electrolysis [J].
Ahmadi, Pouria ;
Dincer, Ibrahim ;
Rosen, Marc A. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (04) :1795-1805
[2]   Energy and exergy evaluation of a tri-generation system driven by the geothermal energy [J].
Akrami, Ehsan ;
Chitsaz, Ata ;
Ghamari, Pooria ;
Mahmoudi, S. M. S. .
JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2017, 31 (01) :401-408
[3]   Thermodynamic, exergo-economic and exergo-environmental analysis of hybrid geothermal-solar power plant based on ORC cycle using emergy concept [J].
Alibaba, Massomeh ;
Pourdarbani, Razieh ;
Manesh, Mohammad Hasan Khoshgoftar ;
Ochoa, Guillermo Valencia ;
Forero, Jorge Duarte .
HELIYON, 2020, 6 (04)
[4]   Thermodynamic performance evaluation of a geothermal ORC power plant [J].
Altun, A. F. ;
Kilic, M. .
RENEWABLE ENERGY, 2020, 148 :261-274
[5]   Thermodynamic and economic analyses of a hybrid waste-driven CHP-ORC plant with exhaust heat recovery [J].
Arabkoohsar, A. ;
Nami, H. .
ENERGY CONVERSION AND MANAGEMENT, 2019, 187 :512-522
[6]   Performance analysis of a novel solar PTC integrated system for multi-generation with hydrogen production [J].
Bamisile, Olusola ;
Huang, Qi ;
Hu, Weihao ;
Dagbasi, Mustafa ;
Kemena, Awoh Desire .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (01) :190-206
[7]   Exergoeconomic and exergoenvironmental analyses of an integrated solar combined cycle system [J].
Cidade Cavalcanti, Eduardo Jose .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 67 :507-519
[8]  
Dincer I., 2017, Optimization of energy systems
[9]   Novel integrated structure using solar parabolic dish collectors for liquid nitrogen production on offshore gas platforms (exergy and economic analysis) [J].
Ebrahimi, Armin ;
Ghorbani, Bahram ;
Lohrasbi, Homan ;
Ziabasharhagh, Masoud .
SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2020, 37
[10]   Exergy and exergoeconomic analysis of sustainable direct steam generation solar power plants [J].
Elsafi, Amin M. .
ENERGY CONVERSION AND MANAGEMENT, 2015, 103 :338-347