Published January 2014 | Version v1
Journal article

Experimental and theoretical analysis of cell module output performance for a thermophotovoltaic system

  • 1. School of Physics Science and Technology, Soochow University, Suzhou, Jiangsu 215006 (China)
  • 2. Department of Thermal Science and Energy Engineering, University of Science and Technology of China, Hefei, Anhui 230027 (China)

Description

Highlights: • An accurate theoretical model for thermophotovoltaic system is constructed. • Parallel connected module is superior if radiator temperature is uneven. • Series connected module is superior if cell temperature is uneven. • Short circuit current of series module rises when the shunt resistance decreases. • Fill factor is not always accurate to evaluate the module performance. - Abstract: An experimental thermophotovoltaic (TPV) system with a cylindrical-geometry radiator was established to test the output performances of modules under different conditions. The results demonstrate that the output performance of a cell module decreases when the combustion power increases because of the uneven temperature of the radiator or cells. On this basis, a theoretical model for a TPV system was constructed to compare the performance under different conditions of the series-connected (SC) module and the parallel-connected (PC) module, and was verified by the experimental results. The influences of the temperature gradient of the radiator or the cell module, and the series and shunt resistance of the TPV cell on the module performance were analyzed in detail. The results demonstrate that the PC module can effectively reduce the mismatch loss of output power caused by the uneven radiator temperature. The PC module, for instance, has a maximum output power of 2.54 times higher than that of the SC module when the radiator temperature difference is 500 K. However, the output performance of the module connected in series is superior to the PC module while the cell temperature is non-uniform. The output power of the SC module is 9.93% higher than that of the PC module at the cell temperature difference of 125 K. The short circuit current of the SC module is sensitive to the series and shunt resistance if the radiator temperature distribution is non-uniform. As the shunt resistance falls from ∞ to 0.5 Ω, the current varies from 1.757 A to 4.488 A when the radiator temperature difference is 500 K. As the series resistance rises from 6.6 mΩ to 0.5 Ω, this current falls from 2.132 A to 1.654 A under the same condition. This research also shows that the fill factor is not appropriate to evaluate the output performance of a TPV system. Furthermore, the theoretical model developed in this study is used to analyze and optimize the experimental TPV system, and consequently the output powers under two different conditions are enhanced by 20.24% and 33.99% respectively when a module is connected in parallel

Availability note (English)

Available from http://dx.doi.org/10.1016/j.apenergy.2013.08.029

Additional details

Identifiers

DOI
10.1016/j.apenergy.2013.08.029;
PII
S0306-2619(13)00664-8;

Publishing Information

Journal Title
Applied Energy
Journal Volume
113
Journal Page Range
p. 924-931
ISSN
0306-2619
CODEN
APENDX

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
46002635
Subject category
S42: ENGINEERING;
Descriptors DEI
COMBUSTION; CYLINDRICAL CONFIGURATION; ELECTRICAL FAULTS; FILL FACTORS; PERFORMANCE; RADIATORS; TEMPERATURE DISTRIBUTION; TEMPERATURE GRADIENTS; THERMOPHOTOVOLTAIC CONVERTERS
Descriptors DEC
CHEMICAL REACTIONS; CONFIGURATION; DIMENSIONLESS NUMBERS; DIRECT ENERGY CONVERTERS; HEAT EXCHANGERS; OXIDATION; THERMOCHEMICAL PROCESSES

Optional Information

Copyright
Copyright (c) 2013 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.