Part I: Thermal analysis of naturally ventilated BIPV system: Experimental investigation and convective heat transfer coefficients estimation

被引:50
作者
Agathokleous, Rafaela A. [1 ]
Kalogirou, Soteris A. [1 ]
机构
[1] Cyprus Univ Technol, Dept Mech Engn & Mat Sci Engn, Kitiou Kyprianou 36, CY-3041 Limassol, Cyprus
关键词
BIPV; Photovoltaics; Thermal behaviour; Natural ventilation; BUILDING-INTEGRATED PHOTOVOLTAICS; COOLING DUCTS; PERFORMANCE; DESIGN; FACADE; FLOW;
D O I
10.1016/j.solener.2018.02.048
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 purpose of this two-part study is to present the experimental analysis carried out on a naturally ventilated Building Integrated Photovoltaic (BIPV) system and the new correlations developed for the estimation of the convective heat transfer coefficients (CHTC) in the air gap, and use the developed correlations to construct a simulation model which is validated with the experimental data. In BIPV systems the air gap is responsible to cool the PVs and remove excess heat to avoid building overheating. The ventilation of the air gap can be natural or mechanical. However, naturally ventilated systems are less studied although they have important advantages over the mechanically ventilated ones, such as the avoidance of extra energy of the fans, maintenance and noise. The present Part I of this study presents an experimental based thermal analysis of a naturally ventilated vertical BIPV system. A series of experiments on a custom made BIPV system were carried in real outdoor conditions as well as indoors with the use of a large scale solar simulator to measure the thermal characteristics of the system and its thermal behaviour. Indoor experiments were performed to avoid external disturbances from wind that may occur outside. The results show that an open-ended air gap of 0.1 m can create adequate air flow on naturally ventilated systems and can ensure low PV temperatures to avoid PV efficiency decrease. The experimental data are then used to estimate the convective heat transfer coefficients to fit the real conditions of the BIPV systems. Then two correlations are proposed for the estimation of the Nusselt number that fits best the thermal characteristics of a naturally ventilated BIPV system.
引用
收藏
页码:673 / 681
页数:9
相关论文
共 20 条
[1]  
Agathokleous R.A., 2018, SOL ENERGY UNPUB
[2]   Double skin facades (DSF) and building integrated photovoltaics (BIPV): A review of configurations and heat transfer characteristics [J].
Agathokleous, Rafaela A. ;
Kalogirou, Soteris A. .
RENEWABLE ENERGY, 2016, 89 :743-756
[3]  
[Anonymous], RENEW ENERGY
[4]  
Bar-Cohen A., 1984, J HEAT TRANSFER
[5]   A validated model of naturally ventilated PV cladding [J].
Brinkworth, BJ ;
Marshall, RH ;
Ibarahim, Z .
SOLAR ENERGY, 2000, 69 (01) :67-81
[6]   Estimation of flow and heat transfer for the design of PV cooling ducts [J].
Brinkworth, BJ .
SOLAR ENERGY, 2000, 69 (05) :413-420
[7]   Design procedure for cooling ducts to minimise efficiency loss due to temperature rise in PV arrays [J].
Brinkworth, BJ ;
Sandberg, M .
SOLAR ENERGY, 2006, 80 (01) :89-103
[8]   Thermal regulation of photovoltaic cladding [J].
Brinkworth, BJ ;
Cross, BM ;
Marshall, RH ;
Yang, HX .
SOLAR ENERGY, 1997, 61 (03) :169-178
[9]  
Eicker U., 1999, P ISES SOL WORLD C
[10]   Optimizing thermal performance of building-integrated photovoltaics for upgrading informal urbanization [J].
ElSayed, M. S. .
ENERGY AND BUILDINGS, 2016, 116 :232-248