Energy and thermo-fluid-dynamics evaluations of photovoltaic panels cooled by water and air

被引:54
作者
Arcuri, Natale [1 ]
Reda, Francesco [1 ]
De Simone, Marilena [1 ]
机构
[1] Univ Calabria, Dept Mech Energy & Management Engn, I-87036 Arcavacata Di Rende, CS, Italy
关键词
Photovoltaic panel; Efficiency; Cooling system; Energy analysis; PERFORMANCE; EFFICIENCY; COLLECTOR; DESIGN; SYSTEM; FLOW;
D O I
10.1016/j.solener.2014.03.034
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The main limit of photovoltaic (PV) systems is the low conversion efficiency of cells, which is strongly influenced by their operating temperature. As the temperature increases the short circuit current (I-sc) increases moderately, while the open circuit voltage (V-oc) decreases considerably. The cell temperature reduction is a useful methodology that could be used in order to improve the PV panels performance of both new and already installed as well. This solution is interesting especially for high irradiation level locations with high external air temperature range along the daytime, because the maximum producibility occurs when the irradiation is high and therefore, as a consequence, the cell temperature increases. Furthermore, the proposed solution could be integrated with many PV typologies, already installed as well. Thus, it represents an alternative to PVT (Thermal Photovoltaic) systems, which need DHW consumers for supplying the heat produced, otherwise the performance of the system will decrease. Various solutions adopting respectively a cooling water system and an airflow lapping the back of the panels in an open circuit is investigated to individuate the best cooling solution. Finite element software that describes with extreme detail the thermal exchange between the PV cells, the external environment and the cooling system is used in order to assess the reached temperature of the cells with different cooling system configurations calculating for each considered cases the overall thermal losses coefficient. Regarding the air cooling system configuration, which results less invasive, a comparison between the simulated and the measured, by laboratory tests, air speed has been conducted. Hourly energy simulations for the best configurations using the software TRNSYS are carried out to evaluate the annual performances. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:147 / 156
页数:10
相关论文
共 32 条
[21]   Increased electrical yield via water flow over the front of photovoltaic panels [J].
Krauter, S .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2004, 82 (1-2) :131-137
[22]   Outdoor testing of single crystal silicon solar cells [J].
Malik, AQ ;
Damit, SJB .
RENEWABLE ENERGY, 2003, 28 (09) :1433-1445
[23]  
Marinelli V., 1984, ELEMENTI TRASMISSION
[24]   Energy matrices analyses of hybrid photovoltaic thermal (HPVT) water collector with different PV technology [J].
Mishra, R. K. ;
Tiwari, G. N. .
SOLAR ENERGY, 2013, 91 :161-173
[25]   Enhancing the performance of building integrated photovoltaics [J].
Norton, Brian ;
Eames, Philip C. ;
Mallick, Tapas K. ;
Huang, Ming Jun ;
McCormack, Sarah J. ;
Mondol, Jayanta D. ;
Yohanis, Yigzaw G. .
SOLAR ENERGY, 2011, 85 (08) :1629-1664
[26]   Investigation on the annual thermal performance of a photovoltaic wall mounted on a multi-layer facade [J].
Peng, Jinqing ;
Lu, Lin ;
Yang, Hongxing ;
Han, Jun .
APPLIED ENERGY, 2013, 112 :646-656
[27]   The effect of temperature on the power drop in crystalline silicon solar cells [J].
Radziemska, E .
RENEWABLE ENERGY, 2003, 28 (01) :1-12
[28]   On the temperature dependence of photovoltaic module electrical performance: A review of efficiency/power correlations [J].
Skoplaki, E. ;
Palyvos, J. A. .
SOLAR ENERGY, 2009, 83 (05) :614-624
[29]   Simple approach to cooling load component calculation through PV walls [J].
Yang, HX ;
Burnett, J ;
Ji, J .
ENERGY AND BUILDINGS, 2000, 31 (03) :285-290
[30]   On PV module temperatures in tropical regions [J].
Ye, Zhen ;
Nobre, Andre ;
Reindl, Thomas ;
Luther, Joachim ;
Reise, Christian .
SOLAR ENERGY, 2013, 88 :80-87