Energy and exergy assessments of a novel trigeneration system based on a solid oxide fuel cell

被引:203
作者
Ranjbar, Faramarz [1 ]
Chitsaz, Ata [1 ]
Mahmoudi, S. M. S. [1 ]
Khalilarya, Shahram [2 ]
Rosen, Marc A. [3 ]
机构
[1] Univ Tabriz, Fac Mech Engn, Tabriz, Iran
[2] Univ Urmia, Fac Mech Engn, Orumiyeh, Iran
[3] Univ Ontario, Inst Technol, Fac Engn & Appl Sci, Oshawa, ON L1H 7K4, Canada
关键词
Solid oxide fuel cell; Trigeneration; Current density; Efficiency; Exergy; Energy; Exergy destruction; POWER-GENERATION SYSTEM; GAS-TURBINE; THERMODYNAMIC ANALYSIS; CYCLE; PERFORMANCE; MODEL; PART; SIMULATION; DRIVEN; HEAT;
D O I
10.1016/j.enconman.2014.07.014
中图分类号
O414.1 [热力学];
学科分类号
摘要
Energy and exergy assessments are reported of a novel trigeneration system based on a solid oxide fuel cell (SOFC), for steady-state operation and using a zero-dimensional approach. The trigeneration system also includes a generator-absorber heat exchanger for cooling and a heat exchanger for the heating process. The influences of two significant SOFC parameters (current density and inlet flow temperature) on several variables are investigated. The results show that the energy efficiency is a minimum of 33% higher when using the trigeneration system compared with the SOFC power cycle. In addition, the maximum energy efficiencies are found to be 79% for the trigeneration system, 69% for the heating cogeneration, 58% for cooling cogeneration and 46% for electricity production. Moreover, the highest trigeneration exergy efficiency is almost 47% under the given conditions. It is also shown that, as SOFC current density increases, the exergy efficiencies decrease for the power cycle, cooling cogeneration, heating cogeneration and trigeneration. As current density increases, the trigeneration energy and exergy efficiencies decrease, and an optimal current density is observed to exist at which the net electrical power is a maximum. As SOFC inlet flow temperature increases, the trigeneration energy and exergy efficiencies and net electrical power increase to a peak and then decrease. The main exergy destructions occur in the air heat exchanger, the SOFC and the afterburner. (C) 2014 Published by Elsevier Ltd.
引用
收藏
页码:318 / 327
页数:10
相关论文
共 34 条
[1]   An analysis of SOFC/GT CHP system based on exergetic performance criteria [J].
Akkaya, Ali Volkan ;
Sahin, Bahri ;
Erdem, Hasan Huseyin .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (10) :2566-2577
[2]   A study on performance of solid oxide fuel cell-organic Rankine cycle combined system [J].
Akkaya, Ali Volkan ;
Sahin, Bahri .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2009, 33 (06) :553-564
[3]   Energy analysis of a trigeneration plant based on solid oxide fuel cell and organic Rankine cycle [J].
Al-Sulaiman, Fahad A. ;
Dincer, Ibrahim ;
Hamdullahpur, Feridun .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (10) :5104-5113
[4]   Exergy analysis of an integrated solid oxide fuel cell and organic Rankine cycle for cooling, heating and power production [J].
Al-Sulaiman, Fahad A. ;
Dincer, Ibrahim ;
Hamdullahpur, Feridun .
JOURNAL OF POWER SOURCES, 2010, 195 (08) :2346-2354
[5]   Full and part load exergetic analysis of a hybrid micro gas turbine fuel cell system based on existing components [J].
Bakalis, Diamantis P. ;
Stamatis, Anastassios G. .
ENERGY CONVERSION AND MANAGEMENT, 2012, 64 :213-221
[6]   A multi-level simulation platform of natural gas internal reforming solid oxide fuel cell-gas turbine hybrid generation system: Part I. Solid oxide fuel cell model library [J].
Bao, Cheng ;
Shi, Yixiang ;
Croiset, Eric ;
Li, Chen ;
Cai, Ningsheng .
JOURNAL OF POWER SOURCES, 2010, 195 (15) :4871-4892
[7]  
Bossel U.G., 1992, FINAL REPORT SOFC DA
[8]   Model of a novel pressurized solid oxide fuel cell gas turbine hybrid engine [J].
Burbank, Winston, Jr. ;
Witmer, Dennis ;
Holcomb, Frank .
JOURNAL OF POWER SOURCES, 2009, 193 (02) :656-664
[9]   Multi-criteria optimization of a district cogeneration plant integrating a solid oxide fuel cell-gas turbine combined cycle, heat pumps and chillers [J].
Burer, M ;
Tanaka, K ;
Favrat, D ;
Yamada, K .
ENERGY, 2003, 28 (06) :497-518
[10]  
Caliandro P, 2014, ENERGY CONVERS MANAG