Resilient passive cooling strategies during heat waves: A quantitative assessment in different climates

被引:0
|
作者
Al-Assaad, Douaa [1 ,2 ]
Sengupta, Abantika [1 ,3 ]
An, Peihang [1 ]
Breesch, Hilde [1 ]
Afshari, Afshin [4 ]
Amaripadath, Deepak [5 ]
Attia, Shady [6 ]
Baba, Fuad [7 ]
Corrado, Vincenzo [8 ]
Eli, Leticia [9 ]
Krelling, Amanda F. [9 ,10 ]
Lee, Sang Hoon [10 ]
Levinson, Ronnen [10 ]
Olinger, Marcelo [9 ]
Tootkaboni, Mamak [8 ]
Wang, Liangzhu [11 ]
Zhang, Chen [12 ]
Zinzi, Michele [13 ]
机构
[1] Katholieke Univ Leuven, Dept Civil Engn Bldg Phys & Sustainable Bldg, Ghent Campus, Ghent, Belgium
[2] Eindhoven Univ Technol, Bldg Phys & Serv, Eindhoven, Netherlands
[3] Univ Ghent, Dept Architecture & Urban planning, Ghent, Belgium
[4] Fraunhofer Inst Bldg Phys, Valley, Germany
[5] Arizona State Univ, Sch Geog Sci & Urban Planning, Tempe, AZ USA
[6] Univ Liege, Fac Appl Sci, Sustainable Bldg Design Lab, Liege, Belgium
[7] British Univ Dubai, Fac Engn, Dubai, U Arab Emirates
[8] Politecn Torino, DOE, Turin, Italy
[9] Univ Fed Santa Catarina, Lab Energy Efficiency Bldg, Florianopolis, Brazil
[10] Lawrence Berkeley Natl Lab, Bldg Technol & Urban Syst Div, Berkeley, CA USA
[11] Concordia Univ, Bldg Civil & Environm Engn, Montreal, PQ, Canada
[12] Aalborg Univ, Dept Built Environm, Aalborg, Denmark
[13] ENEA Italian Natl Agcy New Technol Energy & Sustai, Rome, Italy
关键词
Thermal resilience; Heat waves; Passive cooling; Quantitative assessment; Degree of shock; EURO-CORDEX; IMPACT; BUILDINGS; RISK;
D O I
10.1016/j.buildenv.2025.112698
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The frequency and severity of extreme weather events like heat waves are rising, posing significant challenges for buildings and their cooling systems. To safeguard occupants from potentially hazardous indoor temperatures, buildings and their cooling systems must be designed and managed to withstand these conditions and thus be resilient. This study assessed via building simulations the resilience performance of selected individual passive cooling strategies for five different climates (ASHRAE climate zones 2A, 3A, 3B, 4A, and 6A) and three heatwave periods (historical, future mid-term and future long-term). Resilience performance was assessed with three criteria: heatwave impact (degrees C & sdot;h above a reference standard effective temperature), absorptivity rate (degrees C/h), and recovery rate (degrees C/h). Strategies such as solar shading, cool envelope materials, advanced glazing, and ventilative cooling could each reduce the heat wave impact and the absorptivity rates in all studied climates at different levels of efficiency. As the heat waves became more extreme, the performance declined at different rates depending on the climate. Some strategies were more suited to specific climates such as cool envelope materials in climate 2A. Most strategies could not speed up the recovery rates from the heat waves except for ventilative cooling in climate 3B. With careful design to maximize the benefits of favorable wind conditions, every climate could benefit from ventilative cooling strategies to speed up recovery from heat waves.
引用
收藏
页数:19
相关论文
共 50 条
  • [1] Assessment of photovoltaic power generation using fin augmented passive cooling technique for different climates
    Raina, Gautam
    Sinha, Sunanda
    Saini, Gaurav
    Sharma, Shubham
    Malik, Prashant
    Thakur, N. S.
    SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2022, 52
  • [2] Modeling and optimization of poultry house passive cooling strategies in semiarid climates
    Harrouz, Jean Paul
    Al Assaad, Douaa
    Orabi, Mohamad
    Ghali, Kamel
    Ouahrani, Djamel
    Ghaddar, Nesreen
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2021, 45 (15) : 20795 - 20811
  • [3] Resilient cooling strategies - A critical review and qualitative assessment
    Zhang, Chen
    Kazanci, Ongun Berk
    Levinson, Ronnen
    Heiselberg, Per
    Olesen, Bjarne W.
    Chiesa, Giacomo
    Sodagar, Behzad
    Ai, Zhengtao
    Selkowitz, Stephen
    Zinzi, Michele
    Mahdavi, Ardeshir
    Teufl, Helene
    Kolokotroni, Maria
    Salvati, Agnese
    Bozonnet, Emmanuel
    Chtioui, Feryal
    Salagnac, Patrick
    Rahif, Ramin
    Attia, Shady
    Lemort, Vincent
    Elnagar, Essam
    Breesch, Hilde
    Sengupta, Abantika
    Wang, Liangzhu Leon
    Qi, Dahai
    Stern, Philipp
    Yoon, Nari
    Bogatu, Dragos-Ioan
    Rupp, Ricardo Forgiarini
    Arghand, Taha
    Javed, Saqib
    Akander, Jan
    Hayati, Abolfazl
    Cehlin, Mathias
    Sayadi, Sana
    Forghani, Sadegh
    Zhang, Hui
    Arens, Edward
    Zhang, Guoqiang
    ENERGY AND BUILDINGS, 2021, 251
  • [4] Cool roofs for passive cooling: performance in different climates and for different insulation levels in Italy
    Costanzo, Vincenzo
    Evola, Gianpiero
    Marletta, Luigi
    ADVANCES IN BUILDING ENERGY RESEARCH, 2013, 7 (02) : 155 - 169
  • [5] Processes determining heat waves across different European climates
    Zschenderlein, Philipp
    Fink, Andreas H.
    Pfahl, Stephan
    Wernli, Heini
    QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY, 2019, 145 (724) : 2973 - 2989
  • [6] Passive cooling & climate responsive facade design Exploring the limits of passive cooling strategies to improve the performance of commercial buildings in warm climates
    Prieto, Alejandro
    Knaack, Ulrich
    Auer, Thomas
    Klein, Tillmann
    ENERGY AND BUILDINGS, 2018, 175 : 30 - 47
  • [7] A thermal assessment for an innovative passive cooling system designed for flat roofs in tropical climates
    Chavez, Ulises
    del Pozo, Carlos Escobar
    Haro, Elba T.
    Rodriguez, Juan M.
    PROCEEDINGS OF THE 4TH INTERNATIONAL CONFERENCE ON SOLAR HEATING AND COOLING FOR BUILDINGS AND INDUSTRY (SHC 2015), 2016, 91 : 284 - 293
  • [8] Numerical simulation integrating passive cooling strategies for building thermal comfort in Guinea's climates
    Diallo, Mamadou Aliou, II
    Romani, Zaid
    Mahdaoui, Mustapha
    Bahraoui, Fatima
    Ahachad, Mohammed
    ADVANCES IN BUILDING ENERGY RESEARCH, 2024, 18 (01) : 82 - 103
  • [9] Passive cooling design strategies as adaptation measures for lowering the indoor overheating risk in tropical climates
    Gamero-Salinas, Juan
    Monge-Barrio, Aurora
    Kishnani, Nirmal
    Lopez-Fidalgo, Jesus
    Sanchez-Ostiz, Ana
    ENERGY AND BUILDINGS, 2021, 252
  • [10] Earth-to-air heat exchangers cooling evaluation for different climates of Iran
    Shojaee, Seyed Mohammad Nima
    Malek, Kaveh
    SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2017, 23 : 111 - 120