Modeling of cool roof heat transfer in tropical climate

被引:77
作者
Zingre, Kishor T. [1 ]
Wan, Man Pun [1 ]
Tong, Shanshan [1 ]
Li, Hua [1 ]
Chang, Victor W. -C. [2 ]
Wong, Swee Khian [3 ]
Toh, Winston Boo Thian [3 ]
Lee, Irene Yen Leng [3 ]
机构
[1] Nanyang Technol Univ, Sch Mech & Aerosp Engn, Singapore 639798, Singapore
[2] Nanyang Technol Univ, Sch Civil & Environm Engn, Singapore 639798, Singapore
[3] Housing & Dev Board HUB, Bldg Res Inst, Singapore 310480, Singapore
关键词
Cool coating; Solid roof heat gain; Heat transfer model; Tropical climate; SURFACE SOLAR ABSORPTIVITY; TRANSFER VALUE EQUATION; SPECTRAL METHOD; ENERGY; APPROXIMATION; BUILDINGS; SCATTERING; SINGAPORE; SYSTEM; REGION;
D O I
10.1016/j.renene.2014.09.045
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Cool roof is gaining popularity as a passive building energy saving solution. A concise and easy-to-apply mathematical model is essential for building designers to evaluate the impact of cool coating on heat transfer and indoor thermal comfort. A novel cool roof heat transfer (CRHT) model was developed using the spectral approximation method. The CRHT model was verified against the conduction transfer function method and was validated against experiments performed in two identically configured apartments with concrete roofs in Singapore. The model predictions show that on a sunny day, a cool coating (solar reflectance of 0.74) reduces the peak roof temperature, indoor air temperature and daily heat gain by up to 14.1 degrees C, 2.4 degrees C and 0.66 kWh/m(2) (or 54%), respectively through the concrete roof. The model predictions match with experimental measurements with reasonable accuracy. Further model predictions suggested that significant daily heat gain reduction can also be achieved by cool coating on galvanized steel (metal) roofs. The daily heat gain reduction brought by the cool coating drops as the roof exposes to higher wind speeds. The proposed CRHT model largely simplifies the calculation of heat transfer of cool roofs, compared to existing methods, and is generally applicable to opaque solid surfaces (roofs and walls). (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:210 / 223
页数:14
相关论文
共 48 条
[1]   Predicting the envelope performance of commercial office buildings in Singapore [J].
Adrian, Chong Zhun Min ;
Hien, Wong Nyuk ;
Marcel, Ignatius ;
Kardinal, Jusuf Steve .
ENERGY AND BUILDINGS, 2013, 66 :66-76
[2]   Energy effects of heat-island reduction strategies in Toronto, Canada [J].
Akbari, H ;
Konopacki, S .
ENERGY, 2004, 29 (02) :191-210
[3]   Cooling energy savings potential of reflective roofs for residential and commercial buildings in the United States [J].
Akbari, H ;
Konopacki, S ;
Pomerantz, M .
ENERGY, 1999, 24 (05) :391-407
[4]   THE THERMAL-RESISTANCE OF AIRSPACES IN BUILDING CONSTRUCTIONS [J].
ANDERSON, BR .
BUILDING AND ENVIRONMENT, 1981, 16 (01) :35-39
[5]  
[Anonymous], P 13 C INT BUILD PER
[6]  
[Anonymous], 2013, E40813 ASTM INT
[7]  
[Anonymous], 2001, HDB FUNDAMENTALS
[8]  
ASTM, 2009, C154909 ASTM INT
[9]   Calculation of convective heat transfer coefficients of room surfaces for natural convection [J].
Awbi, HB .
ENERGY AND BUILDINGS, 1998, 28 (02) :219-227
[10]   On the Chebyshev spectral continuous time approximation for constant and periodic delay differential equations [J].
Butcher, Eric A. ;
Bobrenkov, Oleg A. .
COMMUNICATIONS IN NONLINEAR SCIENCE AND NUMERICAL SIMULATION, 2011, 16 (03) :1541-1554