Thermodynamic assessment and performance optimization of solid oxide fuel cell-Stirling heat engine-reverse osmosis desalination

被引:16
作者
Shakouri, Omolbanin [1 ]
Ahmadi, Mohammad Hossein [1 ]
Gord, Mahmood Farzaneh [2 ]
机构
[1] Shahrood Univ Technol, Fac Mech & Mechatron Engn, POB 3619995161, Shahrood, Iran
[2] Ferdowsi Univ Mashhad, Fac Engn, Mech Engn Dept, Mashhad 9177948974, Razavi Khorasan, Iran
关键词
solid oxide fuel cell; reverse osmosis desalination; Stirling engine; exergy destruction density; hybrid system; multi-objective optimization; MULTIOBJECTIVE EVOLUTIONARY ALGORITHMS; ORGANIC RANKINE-CYCLE; MICRO-GAS-TURBINE; POWER-GENERATION; BIOMASS GASIFICATION; THERMOECONOMIC ANALYSIS; POROUS-ELECTRODES; OPTIMAL-DESIGN; SYSTEM; SOFC;
D O I
10.1093/ijlct/ctaa073
中图分类号
O414.1 [热力学];
学科分类号
摘要
Fuel cells are chemical energy converted to electric energy, which is today a new technology in energy production. Among the existing fuel cells, solid fuel oxide cells have a high potential for use in synthetic and combined production systems due to their high temperature (700-1000 degrees C). The solid oxide fuel cell (SOFC) output acts as a high-temperature source, which can be used for heat engines such as the Stirling engine as a high-temperature heat source. A hybrid system including solid oxide fuel cell and Stirling engine and reverse osmosis desalinating is a cogeneration plant. This system includes two parts for power generation; the first part is power generated in the SOFC, and the second part is that with use of heat rejection of solid oxide fuel cell to generate power in the Stirling engine. Also, due to the water critical situation in the world and the need for freshwater, it is very common to use desalination systems. In this study, important goals such as power density and exergy destruction, and exergy efficiency, have been investigated. In general, the performance of the hybrid system has been investigated. Firstly, a thermodynamic analysis for all components of the system and then multi-objective optimization performed for several objective functions include exergy destruction density, exergy efficiency, fuel cell power and freshwater production rate. The present optimization is performed for two overall purposes; the first purpose is to improve fuel cell output power, exergy efficiency and exergy destruction density, and the second purpose is to improve the exergy efficiency, the amount of freshwater production and exergy destruction density. In this optimization, three robust decision-making methods TOPSIS, LINMAP and FUZZY are used. Two scenarios are presented; the first scenario is covering power, exergy efficiency and exergy destruction density. The output power and exergy efficiency, and exergy destruction density, have optimum values in the TOPSIS method's results. The values are 939.393 (kW), 0.838 and 1139.85 (w/m(2)) respectively. In the second scenario that includes the freshwater production rate, the exergy destruction density and exergy efficiency, three objective functions are at their peak in the FUZZY results, which are 5.697 (kg/s), 7561.192 (w/m(2)) and 0.7421 respectively.
引用
收藏
页码:417 / 428
页数:12
相关论文
共 83 条
[1]   Connecting microstructural coarsening processes to electrochemical performance in solid oxide fuel cells: An integrated modeling approach [J].
Abdeljawad, Fadi ;
Voelker, Benjamin ;
Davis, Ryan ;
McMeeking, Robert M. ;
Haataja, Mikko .
JOURNAL OF POWER SOURCES, 2014, 250 :319-331
[2]   Exergoeconomic analysis and optimization of a transcritical CO2 power cycle driven by solar energy based on nanofluid with liquefied natural gas as its heat sink [J].
Abdollahpour, Amir ;
Ghasempour, Roghayeh ;
Kasaeian, Alibakhsh ;
Ahmadi, Mohammad H. .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2020, 139 (01) :451-473
[3]   Thermo-environmental performance analysis of irreversible solid oxide fuel cell - Stirling heat engine [J].
Acikkalp, Emin .
INTERNATIONAL JOURNAL OF AMBIENT ENERGY, 2018, 39 (07) :751-758
[4]   Ecologic and sustainable objective thermodynamic evaluation of molten carbonate fuel cell-supercritical CO2 Brayton cycle hybrid system [J].
Acikkalp, Emin .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (09) :6272-6280
[5]   Performance analysis of irreversible molten carbonate fuel cell - Braysson heat engine with ecological objective approach [J].
Acikkalp, Emin .
ENERGY CONVERSION AND MANAGEMENT, 2017, 132 :432-437
[6]   Multi-objective performance optimization of irreversible molten carbonate fuel cell-Stirling heat engine-reverse osmosis and thermodynamic assessment with ecological objective approach [J].
Ahmadi, Mohammad H. ;
Sameti, Mohammad ;
Pourkiaei, Seyed M. ;
Ming, Tingzhen ;
Pourfayaz, Fathollah ;
Chamkha, Ali J. ;
Oztop, Hakan F. ;
Jokar, Mohammad Ali .
ENERGY SCIENCE & ENGINEERING, 2018, 6 (06) :783-796
[7]   Energy and Exergy Analyses of a Solid Oxide Fuel Cell-Gas Turbine-Organic Rankine Cycle Power Plant with Liquefied Natural Gas as Heat Sink [J].
Ahmadi, Mohammad H. ;
Sadaghiani, Mirhadi S. ;
Pourfayaz, Fathollah ;
Ghazvini, Mahyar ;
Mahian, Omid ;
Mehrpooya, Mehdi ;
Wongwises, Somchai .
ENTROPY, 2018, 20 (07)
[8]   Multi-objective performance optimization of irreversible molten carbonate fuel cell-Braysson heat engine and thermodynamic analysis with ecological objective approach [J].
Ahmadi, Mohammad H. ;
Jokar, Mohammad Ali ;
Ming, Tingzhen ;
Feidt, Michel ;
Pourfayaz, Fathollah ;
Astaraei, Fatemeh Razi .
ENERGY, 2018, 144 :707-722
[9]   Exergetic sustainability evaluation and multi-objective optimization of performance of an irreversible nanoscale Stirling refrigeration cycle operating with Maxwell Boltzmann gas [J].
Ahmadi, Mohammad H. ;
Ahmadi, Mohammad-Ali ;
Maleki, Akbar ;
Pourfayaz, Fathollah ;
Bidi, Mokhtar ;
Acikkalp, Emin .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 78 :80-92
[10]   Thermal models for analysis of performance of Stirling engine: A review [J].
Ahmadi, Mohammad H. ;
Ahmadi, Mohammad-Ali ;
Pourfayaz, Fathollah .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 68 :168-184