Increasing Solar Reflectivity of Building Envelope Materials to Mitigate Urban Heat Islands: State-of-the-Art Review

被引:34
作者
Ziaeemehr, Bahador [1 ]
Jandaghian, Zahra [2 ]
Ge, Hua [1 ]
Lacasse, Michael [2 ]
Moore, Travis [2 ]
机构
[1] Concordia Univ, Dept Bldg Civil & Environm Engn, Montreal, PQ H3G 1M8, Canada
[2] Natl Res Council Canada, Construct Res Ctr, Ottawa K1A 0R6, ON, Canada
关键词
urban heat island (UHI); solar reflectivity index; solar emissivity; building envelope materials; cool materials; RADIATIVE COOLING APPLICATIONS; LOW-TEMPERATURES; ENERGY USE; CLIMATE; VEGETATION; SURFACE; PERFORMANCE; IMPACT; MICROCLIMATE; COATINGS;
D O I
10.3390/buildings13112868
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The Urban Heat Island (UHI), a consequence of urban development, leads to elevated temperatures within cities compared to their rural counterparts. This phenomenon results from factors such as urban designs, anthropogenic heat emissions, and materials that absorb and retain solar radiation in the built environment. Materials commonly used in cities, like concrete, asphalt, and stone, capture solar energy and subsequently emit it as heat into the surroundings. Consequently, this phenomenon amplifies summertime cooling energy demands in buildings. To mitigate the UHI impacts, various mitigation strategies have emerged that include but are not limited to using higher solar reflectivity materials, known as "cool materials", and increasing vegetation and greenery in urban areas. Cool materials have high reflectivity and emissivity, effectively reflecting solar radiation while emitting absorbed heat through radiative cooling. Increasing the solar reflectivity of building envelope materials is a promising sustainable solution to lessen the UHI effects. This state-of-the-art review summarizes the UHI causes and effects, states the mitigation strategies, describes the cool building envelope materials, explains the solar reflectivity index measurements, indicates the building and micro-climate simulations, highlights the performance evaluation of using cool building envelope materials, points out the research gaps, and proposes future research opportunities.
引用
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页数:26
相关论文
共 138 条
[71]   Daytime Radiative Cooling Using Near-Black Infrared Emitters [J].
Kou, Jun-Long ;
Jurado, Zoila ;
Chen, Zhen ;
Fan, Shanhui ;
Minnich, Austin J. .
ACS PHOTONICS, 2017, 4 (03) :626-630
[72]   Spectral Emissivity (SE) Measurement Uncertainties across 2.5-14 μm Derived from a Round-Robin Study Made across International Laboratories [J].
Langsdale, Mary F. ;
Wooster, Martin ;
Harrison, Jeremy J. ;
Koehl, Michael ;
Hecker, Christoph ;
Hook, Simon J. ;
Abbott, Elsa ;
Johnson, William R. ;
Maturilli, Alessandro ;
Poutier, Laurent ;
Lau, Ian C. ;
Brucker, Franz .
REMOTE SENSING, 2021, 13 (01) :1-37
[73]  
Laouadi A., 2021, Climate resilience buildings: guideline for management of overheating risk in residential buildings
[74]   Overheating Risk Analysis in Long-Term Care Homes-Development of Overheating Limit Criteria [J].
Laouadi, Abdelaziz ;
Ji, Lili ;
Shu, Chang ;
Wang, Liangzhu Leon ;
Lacasse, Michael A. .
BUILDINGS, 2023, 13 (02)
[75]  
Lee BT, 2007, J MATER RES, V22, P615, DOI 10.1557/JMR.2007.0070
[76]   Analysis of factors influencing actual absorption of solar energy by building walls [J].
Li, He ;
Jia, Hongwei ;
Zhong, Ke ;
Zhai, Zhiqiang .
ENERGY, 2021, 215
[77]   A Comprehensive Photonic Approach for Solar Cell Cooling [J].
Li, Wei ;
Shi, Yu ;
Chen, Kaifeng ;
Zhu, Linxiao ;
Fan, Shanhui .
ACS PHOTONICS, 2017, 4 (04) :774-782
[78]   Radiative cooling-assisted thermoelectric refrigeration and power systems: Coupling properties and parametric optimization [J].
Liao, Tianjun ;
Xu, Qidong ;
Dai, Yawen ;
Cheng, Chun ;
He, Qijiao ;
Ni, Meng .
ENERGY, 2022, 242
[79]  
Liu KKY., 2006, Constr Can, V48, P44
[80]   Spectral properties of retro-reflective materials from experimental measurements [J].
Liu, Shuhan ;
Wang, Jing ;
Meng, Xi .
CASE STUDIES IN THERMAL ENGINEERING, 2022, 39