A correlation for optimal steam-to-fuel ratio in a biogas-fueled solid oxide fuel cell with internal steam reforming by using Artificial Neural Networks

被引:11
作者
Mehrabian, Morteza [1 ]
Mahmoudimehr, Javad [1 ]
机构
[1] Univ Guilan, Fac Mech Engn, Rasht, Iran
关键词
Artificial Neural Networks; Biogas-fueled solid oxide fuel cell; Internal steam reforming; Numerical study; Optimal steam -to -fuel ratio; SYNGAS PRODUCTION; CARBON FORMATION; GAS-TURBINE; SOFC; METHANE; PLANAR; ANODE; PERFORMANCE; ELECTROLYTE; ENERGY;
D O I
10.1016/j.renene.2023.119397
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
It is a challenge to find the optimal amount of water steam to be added to the fuel in a biogas-fueled solid oxide fuel cell (SOFC). An under-optimal steam fraction impedes steam reforming reactions, while an over-optimal steam fraction reduces SOFC performance due to a fuel shortage. Water production inside the cell, as a result of electrochemical reactions, and the carbon deposition issue rises the complexity of the problem. The main novelty of the current study is to propose a mathematical correlation for the optimal steam-to-biogas ratio as a function of operating temperature and biogas composition using a 3D simulation-trained Artificial Neural Network (ANN). This correlation can be simply used without having to study the complex phenomena inside the biogas-fueled SOFC. The results indicate the optimal steam-to-fuel ratio is highly dependent on the temperature and biogas methane content; that is, for a temperature range of 873K-1273K and a biogas CH4/CO2 range of 0.82-3, the optimal steam-to-fuel ratio varies within a range of 0.3-1.3. It is also observed that the optimal steam-to-fuel ratio decreases with temperature, but increases with the biogas methane content. The ANNproduced correlation shows a good agreement with the simulation results and can be reliably used by engineers.
引用
收藏
页数:16
相关论文
共 69 条
[11]   Utilization of biogas from different substrates for SOFC feed via steam reforming: Thermodynamic and exergy analyses [J].
Chouhan, Kantilal ;
Sinha, Shishir ;
Kumar, Shashi ;
Kumar, Surendra .
JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2019, 7 (02)
[12]   Thermodynamic modeling of direct internal reforming solid oxide fuel cells operating with syngas [J].
Colpan, C. Ozgur ;
Dincer, Ibrahim ;
Hamdullahpur, Feridun .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2007, 32 (07) :787-795
[13]   Use of biogas from biowaste in a solid oxide fuel cell stack: Application to an off-grid power plant [J].
Cozzolino, Raffaello ;
Lombardi, Lidia ;
Tribioli, Laura .
RENEWABLE ENERGY, 2017, 111 :781-791
[14]   Energy, exergy and economic analysis of an integrated solid oxide fuel cell - gas turbine - organic Rankine power generation system [J].
Eveloy, Valerie ;
Karunkeyoon, Wirinya ;
Rodgers, Peter ;
Al Alili, Ali .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2016, 41 (31) :13843-13858
[15]   Hybrid control for a class of underactuated mechanical systems [J].
Fierro, R ;
Lewis, FL ;
Lowe, A .
IEEE TRANSACTIONS ON SYSTEMS MAN AND CYBERNETICS PART A-SYSTEMS AND HUMANS, 1999, 29 (06) :649-654
[16]   Biogas as hydrogen source for fuel cell applications [J].
Galvagno, A. ;
Chiodo, V. ;
Urbani, F. ;
Freni, F. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (10) :3913-3920
[17]   Experimental study of dry reforming of biogas in a tubular anode-supported solid oxide fuel cell [J].
Guerra, Cosimo ;
Lanzini, Andrea ;
Leone, Pierluigi ;
Santarelli, Massimo ;
Beretta, Davide .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (25) :10559-10566
[18]   Three-dimensional simulation of chemically reacting gas flows in the porous support structure of an integrated-planar solid oxide fuel cell [J].
Haberman, BA ;
Young, JB .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2004, 47 (17-18) :3617-3629
[19]   Mathematical modeling of planar solid oxide fuel cells [J].
Hussain, M. M. ;
Li, X. ;
Dincer, I. .
JOURNAL OF POWER SOURCES, 2006, 161 (02) :1012-1022
[20]   Oxidative Dry-Reforming of Biogas: Reactor Design and SOFC System Integration [J].
Jahn, Matthias ;
Heddrich, Marc ;
Weder, Aniko ;
Reichelt, Erik ;
Lange, Ruediger .
ENERGY TECHNOLOGY, 2013, 1 (01) :48-58