The problem of CO2 emissions and the need to find new energy sources are pushing scientific research toward the use of high efficiency technologies for electric power generation that can exploit renewable energy sources—potentially neutral for the environment in terms of greenhouse gas emissions. Process simulations of advanced plants fed by biomass are a key step to develop renewable resources based high temperature fuel cell applications. The aim of this work is to predict the component behavior of a specific power plant mainly composed of a gasifier, a molten carbonate fuel cell (MCFC), and a micro-gas-turbine (mGT) and fed by chestnut coppice, waste available in great quantity in Central Italy, as well as in several other European regions. The gasifier produces a gas with a high content of hydrogen and low content of char and tar. This syngas is exploited by the MCFC-mGT plant. The mGT, using the MCFC cathode outlet gases, shows through simulation to be able to operate the air compressor and produce further electrical power. Particular models for the MCFC and gasifier have been developed in FORTRAN by the authors and then interfaced to commercial software (CHEMCAD©) to simulate the plant’s thermodynamic behavior. The results show the possibility of an extremely interesting “carbon neutral” plant configuration with high electrical and global efficiency (respectively, 41% and 86%), exclusively based on the use of renewable resources (biomass).

1.
Morita
,
H.
,
Yoshiba
,
F.
,
Woudstra
,
N.
,
Hemmes
,
K.
, and
Spliethoff
,
H.
, 2004 “
Feasibility Study of Wood Biomass Gasification/Molten Carbonate Fuel Cell Power System—Comparative Characterization of Fuel Cell and Gas Turbine Systems
,”
J. Power Sources
0378-7753,
138
, pp.
31
40
.
2.
Lobachyov
,
K. V.
, and
Richter
,
H. J.
, 1998, “
An Advanced Integrated Biomass Gasification and Molten Fuel Cell Power System
,”
Energy Convers. Manage.
0196-8904,
39
(
16–18
), pp.
1931
1943
.
3.
Iaquaniello
,
G.
, and
Mangiapane
,
A.
, 2006, “
Integration of Biomass Gasification With MCFC
,”
Int. J. Hydrogen Energy
0360-3199,
31
, pp.
399
404
.
4.
Bourgeois
,
J. P.
, and
Doat
,
J.
, 1984, “
Torrefied Wood From Temperate and Tropical Species: Advantages and Prospects
,”
Bioenergy
,
84
, pp.
153
159
.
5.
Jand
,
N.
, and
Foscolo
,
P. U.
, 2005, “
Decomposition of Wood Particles in Fluidized Beds
,”
Ind. Eng. Chem. Res.
0888-5885,
44
(
14
), pp.
5079
5089
.
6.
Bettagli
,
N.
,
Desideri
,
U.
, and
Fiaschi
,
D.
, 1995, “
A Biomass Combustion-Gasification Model: Validation and Sensitivity Analysis
,”
ASME J. Energy Resour. Technol.
0195-0738,
117
(
4
), pp.
329
336
.
7.
Di Blasi
,
C.
,
Branca
,
C.
,
Santoro
,
A.
, and
Hernandez
,
E. G.
, 2001, “
Pyrolytic Behavior and Products of Some Wood Varieties
,”
Combust. Flame
0010-2180,
124
, pp.
165
177
.
8.
Aznar
,
M. P.
,
Caballero
,
M. A.
,
Gil
,
J.
,
Martın
,
J. A.
, and
Corella
,
J.
, 1998, “
Commercial Steam Reforming Catalysts to Improve Biomass Gasification with Steam-Oxygen Mixtures. 2. Catalytic Tar Removal
,”
Ind. Eng. Chem. Res.
0888-5885,
37
, pp.
2668
2680
.
9.
Zan
,
M.
, and
Gavriilidis
,
A.
, 2003, “
Catalytic Combustion Assisted Methane Steam Reforming in a Catalytic Plate Reactor
,”
Chem. Eng. Sci.
0009-2509,
58
, pp.
3947
3960
.
10.
Holman
,
J. P.
, 1989,
Heat Transfer
,
McGraw-Hill
,
New York
.
11.
Bosio
,
B.
,
Costamagna
,
P.
, and
Parodi
,
P.
, 1999, “
Modeling and Experimentation of Molten Carbonate Fuel Cell Reactors in a Scale-Up Process
,”
Chem. Eng. Sci.
0009-2509,
54
, pp.
2907
2916
.
12.
Arato
,
E.
,
Bosio
,
B.
,
Massa
,
R.
, and
Parodi
,
F.
, 2000, “
Optimisation of the Cell Shape for Industrial MCFC Stacks
,”
J. Power Sources
0378-7753,
86
, pp.
302
308
.
13.
Rapagna
,
S.
,
Jand
,
N.
, and
Foscolo
,
P.
, 1998, “
Catalytic Gasification of Biomass to Produce Hydrogen Rich Gas
,”
Int. J. Hydrogen Energy
0360-3199,
23
(
7
), pp.
551
557
.
14.
Costa
,
P.
,
Arato
,
E.
,
Maga
,
L.
, and
Paladino
,
O.
, 1991, “
Steady State Simulation of Fuel Cell Devices
,”
Chem. and Biochem. Engng Q.
,
5
, pp.
43
51
.
15.
He
,
W.
, and
Chen
,
Q.
, 1995, “
Three Dimensional Simulation of Molten Carbonate Fuel Cell Stack Using Computational Fluid Dynamics Technique
,”
J. Power Sources
0378-7753,
55
, pp.
25
32
.
You do not currently have access to this content.