This paper presents results on the performance of 10 MW biomass-fired steam power plant. The main objective is to test the performance of the power plant using different type of biomass fuels: bagasse, corn stover, forest residues, and urban wood residues. The biomass fuel was mixed with sub-bituminous coal with fractions of 0–100%. The effect of excess combustion air, flue gas temperature, and the parasitic loads on the power plant performance was investigated. The output results from the heat and mass balance analysis include the monthly and annual electrical power generated, capacity factor (CF), boiler efficiency (BE), thermal efficiency, and gross and net heat rate. The results show a slightly decrease (1.7%) of the annual energy production when the biomass fractions increase from 6% to 100% but a substantial decrease of the CO2 equivalent emissions. A decrease of the excess combustion air from 25% to 5% will increase the boiler and thermal efficiencies and the annual energy output by 2%. This is mainly due to the reduction of the dry flue gas losses (DFGLs) with the reduction of the excess combustion air. A reduction of the parasitic loads from 10% to 2% will increase the power plant performance by 9%. This can be achieved by using more efficient pumps, fans, and conveyors in the power plant. A reduction of the flue gas temperature from 480 °F to 360 °F increases the power plant performance by 4.4% due to the reduction of the dry flue gas losses.

References

1.
Ghenai
,
C.
,
2014
, “
Energy-Water-Carbon Interconnection: Challenges and Sustainable Solution Methods and Strategies
,”
Int. J. Therm. Environ. Eng.
,
7
(
2
), pp.
57
64
.
2.
Sami
,
M.
,
Annamalai
,
K.
, and
Woldridge
,
M.
,
2001
, “
Co-Firing of Coal and Biomass Fuel Blends
,”
Prog. Energy Combust. Sci.
,
27
(
2
), pp.
171
214
.
3.
Ghenai
,
C.
, and
Janajreh
,
I.
,
2010
, “
CFD Analysis of the Effects of Co-Firing Biomass With Coal
,”
Energy Convers. Manage.
,
51
(
8
), pp.
1694
1701
.
4.
Kaer
,
S. K.
,
Rosendhal
,
L.
, and
Overgaard
,
P.
,
1998
, “
Numerical Analysis of Co-Firing Coal and Straw
,”
4th European CFD Conference
, Athens, Greece, Sept. 7–11, pp.
1194
1199
.
5.
Sosa-Arnao
,
J. H.
,
Modesto
,
M.
, and
Nebra
,
S. A.
,
2006
, “
Two Proposals to Determine the Efficiency of Bagasse Boiler
,”
6th Encontro de Energia no Maio Rural
, Campinas, Brazil.
6.
Muhaisen
,
N. M.
, and
Hokoma
,
R. A.
,
2012
, “
Calculating the Efficiency of Steam Based on Its Most Effecting Factors: A Case Study
,”
World Acad. Sci. Eng. Technol.
,
6
(
3
), pp.
554
557
.
7.
Gupta
,
R. D.
,
Ghai
,
S.
, and
Jain
,
A.
,
2011
, “
Energy Efficiency Improvement for Industrial Boilers: A Case Study
,”
J. Eng. Technol.
,
1
(
1
), pp.
52
56
.
8.
Vijayara
,
B.
,
Saravanan
,
R.
, and
Renganarayana
,
S.
,
2007
, “
Studies on Thin Layer Drying of Bagasse
,”
Int. J. Energy Res.
,
31
(
4
), pp.
422
437
.
9.
Igathinathane
,
C.
,
Womac
,
A. R.
,
Sokhansanj
,
S.
, and
Pordesimo
,
L. O.
,
2005
, “
Sorption Equilibrium Moisture Characteristics of Selected Corn Stover Components
,”
Am. Soc. Agri. Eng.
,
48
(4), pp.
1449
1460
.
10.
Simpson
,
W. T.
,
1998
, “
Equilibrium Moisture Content of Wood in Outdoor Locations in the United States and Worldwide
,”
U.S. Department of Agriculture
, Forest Service, Madison, WI.
11.
Stultz
,
S. C.
, and
Kitto
,
J. B.
, eds.,
1972
,
Steam: Its Generation and Use
,
Babcock & Wilcox
,
New York
.
12.
Friedl
,
A.
,
Padouvas
,
E.
,
Rotter
,
H.
, and
Varmuza
,
K.
,
2005
, “
Prediction of Heating Values of Biomass Fuel From Elemental Composition
,”
Anal. Chim. Acta
,
544
(1–2), pp.
191
198
.
13.
U.S. EPA Combined Heat and Power Partnership
,
2007
, “
Biomass Combined Heat and Power Catalog of Technologies
,”
U.S. EPA
, Washington, DC.
14.
Jorgenson
,
J.
,
Gilman
,
P.
, and
Dobos
,
A.
, 2011, “
Technical Manual for the SAM Biomass Power Generation Model
,”
Technical Report No. NREL/TP-6A20-52688
.
15.
Thornqvist
,
T.
, and
Jirjis
,
R.
,
1990
, “
Changes in Fuel Chips During Storage in Large Piles
,” Department of Forest Products,
Swedish University of Agricultural Sciences
, Uppsala, Sweden, Report No. 219.
16.
Padfield, T., 1996, “
Equations Describing the Physical Properties of Moist Air
,” National Museum of Denmark, Copenhagen, Denmark, accessed Sept. 19, 2011, http://www.natmus.dk/cons/tp/atmcalc/atmoclc1.htm
17.
Natural Resources Canada
, 2015, “
Boiler Efficiency Calculator
,” accessed Dec. 9, 2015, http://www.nrcan.gc.ca/energy/efficiency/industry/technical-info/tools/boilers/5431
You do not currently have access to this content.