One of the noted benefits of concentrating photovoltaics (PV) is the reduced cell area which results in reduction of the overall system cost. A variety of studies have looked at the cost for concentrating PV systems and made comparisons to concentrating solar thermal power plants, typically resulting in concentrating solar thermal power having lower system costs. Recently, a widespread design space was assessed for the potential efficiency improvements possible with a coupled hybrid PV/thermal solar energy system for electricity generation. The analysis showed that modest efficiency improvements could be made but no assessment of the economic impact was made. Although modest efficiency gains can be made, such a hybrid system requires more components than one of the conventional stand alone concentrating solar power plant on its own resulting in significantly different system costs. As a result, we look to compare the overall system costs of three different solar power technologies: concentrating PV, concentrating solar thermal, and the concentrating hybrid approach. Additionally, we will focus on documenting the necessary hybrid efficiencies to make a hybrid system competitive as well as the feasibility and means for achieving these efficiencies.

References

1.
Chow
,
T. T.
,
2009
, “
A Review on Photovoltaic/Thermal Hybrid Solar Technology
,”
Appl. Energy
,
87
, pp.
365
379
.10.1016/j.apenergy.2009.06.037
2.
Singh
,
B.
, and
Othman
,
M. Y.
,
2009
, “
A Review on Photovoltaic Thermal Collectors
,”
J. Renewable Sustainable Energy
,
1
, p.
062702
.10.1063/1.3266963
3.
Otanicar
,
T. P.
,
Chowdhury
,
I.
,
Phelan
,
P. E.
, and
Prasher
,
R.
,
2010
, “
Parametric Analysis of a Coupled Photovoltaic/Thermal Concentrating Solar Collector for Electricity Generation,”
J. Appl. Phys.
,
108
, p.
114907
.10.1063/1.3514590
4.
Mbewe
,
D. J.
,
Card
,
H. C.
, and
Card
,
D. C.
,
1985
, “
A Model of Silicon Solar Cells for Concentrator Photovoltaic and Photovoltaic/Thermal System Design
,”
Sol. Energy
,
35
(
3
), pp.
247
258
.10.1016/0038-092X(85)90104-5
5.
Vorobiev
,
Y. V.
,
González-Hernández
,
J.
, and
Kribus
,
A.
,
2006
, “
Analysis of Potential Conversion Efficiency of a Solar Hybrid System With High-Temperature Stage
,”
J. Sol. Energy Eng.
,
128
, pp.
258
260
.10.1115/1.2189865
6.
Vorobiev
,
Y.
,
González-Hernández
,
J.
,
Vorobiev
,
P.
, and
Bulat
,
L.
,
2006
,
Thermal-Photovoltaic Solar Hybrid System for Efficient Solar Energy Conversion,”
Sol. Energy
,
80
, pp.
170
176
.10.1016/j.solener.2005.04.022
7.
Mittelman
,
G.
,
Kribus
,
A.
, and
Dayan
,
A.
,
2007
, “
Solar Cooling With Concentrating Photovoltaic/Thermal (CPVT) Systems,”
Energy Convers. Manage.
,
48
, pp.
2481
2490
.10.1016/j.enconman.2007.04.004
8.
Coventry
,
J. S.
,
2005
, “
Performance of a Concentrating Photovoltaic/Thermal Solar Collector
,”
Sol. Energy
,
78
, pp.
211
222
.10.1016/j.solener.2004.03.014
9.
Otanicar
,
T. P.
,
Chowdhury
,
I.
,
Prasher
,
R.
, and
Phelan
,
P. E.
,
2011
, “
Band-Gap Tuned Direct Absorption for a Hybrid Concentrating Solar Photovoltaic/Thermal System
,”
J. Sol. Energy Eng.
,
133
(
4
), p.
041014
10.1115/1.4004708.
10.
Kalogirous
,
S. A.
, and
Tripanagnostopoulos
,
Y.
,
2006
, “
Hybrid PV/T Solar Systems for Domestic Hot Water and Electricity Production
,”
Energy Convers. Manage.
,
47
, pp.
3368
3382
.10.1016/j.enconman.2006.01.012
11.
McGowin
,
C.
,
2007
,
Renewable Energy Technical Assessment Guide-TAG-RE: 2006
,
Electric Power Research Institute
, Palo Alto, CA.
12.
Fan
,
J. C. C.
,
Tsaur
,
B.-Y.
, and
Palm
,
B. J.
,
1983
, “
High Efficiency Crystalline Tandem Cells
,”
Proc. SPIE
,
407
, pp.
73
87
.10.1117/12.935690
13.
Royne
,
A.
,
Dey
,
C. J.
, and
Mills
,
D. R.
,
2005
, “
Cooling of Photovoltaic Cells Under Concentrated Illumination: A Critical Review
,”
Sol. Energy Mater. Sol. Cells
,
86
, pp.
451
483
.10.1016/j.solmat.2004.09.003
14.
Sargent & Lundy LLC Consulting Group
,
2003
, “
Assessment of Parabolic Trough and Power Tower Solar Technology Cost and Performance Forecasts
,” Golden, CO, National Renewable Energy Laboratory Report No. NREL/SR-550-34440.
15.
U.S. Department of Energy
,
2007
, “Solar Energy Technologies Program: Multi-Year Program Plan 2007-2011.”
16.
Goodrich
,
A. C.
,
Woodhouse
,
M.
, and
James
,
T.
,
2011
, “
Solar PV Manufacturing Cost Model Group: Installed Solar PV System Prices
,”
SEGIS-ADEPT Power Electronics in Photovoltaics Systems Workshop
,
Arlington, VA
, February 8th.
17.
Otanicar
,
T. P.
, and
Golden
,
J. S.
,
2009
, “
Comparative Environmental and Economic Analysis of Conventional and Nanofluid Solar Hot Water Technologies
,”
Environ. Sci. Technol.
,
3
, pp.
6082
6087
.10.1021/es900031j
18.
Taylor
,
R. A.
,
Phelan
,
P. E.
,
Otanicar
,
T. P.
,
Walker
,
C. A.
,
Nguyen
,
M.
,
Trimble
,
S.
, and
Prasher
,
R.
,
2011
, “
Applicability of Nanofluids in High Flux Solar Collectors
,”
J. Renewable Sustainable Energy
,
3
, p.
023104
.10.1063/1.3571565
You do not currently have access to this content.