Progress on green infrastructure for urban cooling: Evaluating techniques, design strategies, and benefits

被引:9
作者
Azmeer, Amjad [1 ,2 ]
Tahir, Furqan [1 ,2 ]
Al-Ghamdi, Sami G. [1 ,2 ]
机构
[1] King Abdullah Univ Sci & Technol KAUST, Environm Sci & Engn Program, Biol & Environm Sci & Engn Div, Thuwal 239556900, Saudi Arabia
[2] King Abdullah Univ Sci & Technol KAUST, KAUST Climate & Livabil Initiat, Thuwal 239556900, Saudi Arabia
关键词
Climate change; Cooling potential; ENVI-met; Green infrastructure; Urban heat island; WRF; HEAT-ISLAND MITIGATION; HUMAN THERMAL COMFORT; AIR-TEMPERATURE; CLIMATE-CHANGE; ENVI-MET; MICROCLIMATE; OUTDOOR; ENERGY; IMPACT; CITY;
D O I
10.1016/j.uclim.2024.102077
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Green infrastructure (GI) can act as an effective cooling strategy to mitigate the urban heat island effect. The complex interdependencies in the built environment make it challenging to quantify GI cooling accurately. Present literature on GI cooling often lacks focus on techniques and overlooks cooling co-benefits. This review addresses this gap by consolidating recent research on standard GI techniques and design approaches to maximize GI cooling. The temperature results from recent literature are segregated by GI type, technique type, local climate zones, and scale. ENVI-met and the Weather Research and Forecasting model (WRF) are the most common numerical modeling methods utilized for the microscale and mesoscale. Results indicate that the highest air temperature reduction is achieved by arid climates, followed by temperate, tropical, and continental climates, respectively. The study suggests that to integrate GI into the built environment successfully, researchers should consider influencing factors like spatial distribution, microclimate, and plant selection. Climate change intensifies the severity of overheating; therefore, integrating GI into cities must be done holistically and consider co-benefits and related trade-offs.
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页数:22
相关论文
共 163 条
[1]  
Abuwaer N., 2023, Sustainable Cities in a Changing Climate: Enhancing Urban Resilience, P185
[2]  
Al-Gretawee H, 2016, INT J GEOMATE, V11, P2541
[3]  
Al-Humaiqani M.M., 2023, Sustainable Cities in a Changing Climate, P207, DOI [10.1002/9781394201532.ch13, DOI 10.1002/9781394201532.CH13]
[4]   The use of reflective materials as a strategy for urban cooling in an arid "OASIS" city [J].
Alchapar, Noelia L. ;
Correa, Erica N. .
SUSTAINABLE CITIES AND SOCIETY, 2016, 27 :1-14
[5]   Assessment of the impact of urban tree canopy on microclimate in Bhopal: A devised low-cost traverse methodology [J].
Ali, Sarah Binte ;
Patnaik, Suprava .
URBAN CLIMATE, 2019, 27 :430-445
[6]   The potential of Blue-Green infrastructure as a climate change adaptation strategy: a systematic literature review [J].
Almaaitah, Tamer ;
Appleby, Madison ;
Rosenblat, Howard ;
Drake, Jennifer ;
Joksimovic, Darko .
BLUE-GREEN SYSTEMS, 2021, 3 (01) :223-248
[7]   Impacts of the Microclimate of a Large Urban Park on Its Surrounding Built Environment in the Summertime [J].
Amani-Beni, Majid ;
Zhang, Biao ;
Xie, Gao-Di ;
Odgaard, A. Jacob .
REMOTE SENSING, 2021, 13 (22)
[8]   Efficiency of green roofs and green walls as climate change mitigation measures in extremely hot and dry climate: Case study of Qatar [J].
Andric, Ivan ;
Kamal, Athar ;
Al-Ghamdi, Sami G. .
ENERGY REPORTS, 2020, 6 (06) :2476-2489
[9]   Urban green space cooling effect in cities [J].
Aram, Farshid ;
Higueras Garcia, Ester ;
Solgi, Ebrahim ;
Mansournia, Soran .
HELIYON, 2019, 5 (04)
[10]   The effect of tree shade and grass on surface and globe temperatures in an urban area [J].
Armson, D. ;
Stringer, P. ;
Ennos, A. R. .
URBAN FORESTRY & URBAN GREENING, 2012, 11 (03) :245-255