Microclimatic models and their implications on the energy requirements of buildings in warm dry urban areas

被引:1
作者
Alchapar, Noelia [1 ]
Balter, Julieta [1 ]
Mercado, M. Victoria [1 ]
Correa, Erica [1 ]
机构
[1] Consejo Nacl Invest Cient & Tecn, Inst Medio Ambiente Habitat & Energia INAHE, CCT Mendoza, Natl Council Sci & Tech Res, Ave Ruiz Leal s-n Parque Gral, RA-M5500 San Martin, Mendoza, Argentina
关键词
Weather files; Building energy requirements; Microclimatic software; AIR TEMPERATURES; HEAT-ISLAND; SIMULATION; MENDOZA; SYSTEM; IMPACT; CITY;
D O I
10.1016/j.enbuild.2024.114468
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Understanding the parameters that amplify or mitigate temperature increases in the built environment is crucial to reducing the energy demand of buildings and achieving urban resilience. This research examines how microclimate scenarios can affect building energy performance forecasts in cities with temperate and dry climates. The aim is to calculate the variation in building energy requirements resulting from using different weather files and urban parameters using the UBEM tool. To achieve this, UWG and Energy Plus software were used to create urban and building models. The study analysed four microclimatic scenarios in the city of Mendoza, Argentina. The scenarios used as a weather file input the annual format of a specific year (AMY files) or long-term (TMY file), whilst also considering the specific urban parameters of the assessed area. The study found that an incorrect weather file can cause a 36% error in energy usage assessments for cooling buildings during summer months. The contribution of this study is the development of a methodology for obtaining a weather file that accurately reflects the microclimate characteristics of the urban area of interest.
引用
收藏
页数:14
相关论文
共 63 条
[1]   Urban energy use modeling methods and tools: A review and an outlook [J].
Abbasabadi, Narjes ;
Ashayeri, J. K. Mehdi .
BUILDING AND ENVIRONMENT, 2019, 161
[2]  
Ai Z., 2023, International Energy Agency-Resilient Cooling of Buildings-State of the Art Review, DOI [10.52776/COXK4763, DOI 10.52776/COXK4763]
[3]  
Alchapar N., 2020, PLEA 2020 CORUNA PLA, P1
[4]   Classification of building materials used in the urban envelopes according to their capacity for mitigation of the urban heat island in semiarid zones [J].
Alchapar, Noelia L. ;
Correa, Erica N. ;
Alicia Canton, M. .
ENERGY AND BUILDINGS, 2014, 69 :22-32
[5]   The impact of different cooling strategies on urban air temperatures: the cases of Campinas, Brazil and Mendoza, Argentina [J].
Alchapar, Noelia Liliana ;
Pezzuto, Claudia Cotrim ;
Correa, Erica Norma ;
Labaki, Lucila Chebel .
THEORETICAL AND APPLIED CLIMATOLOGY, 2017, 130 (1-2) :35-50
[6]   Review of urban building energy modeling (UBEM) approaches, methods and tools using qualitative and quantitative analysis [J].
Ali, Usman ;
Shamsi, Mohammad Haris ;
Hoare, Cathal ;
Mangina, Eleni ;
O'Donnell, James .
ENERGY AND BUILDINGS, 2021, 246
[7]  
[Anonymous], South Africa. No. 40123 of July 2016: Higher Education Act 1997. Government Gazette. (No. 40123). [Online]. Available from: https://www.gov.za/sites/default/files/gcis_document/201607/40123gon801.pdf
[8]  
[Anonymous], 2019, Extensionismo, Innovacion y Transf. Tecnologica Claves para el Desarro, V5, P144
[9]  
Arapakis P., 2019, The use of 3D digital models in microclimatic studies: First steps in coupling CityGML with ENVI-met
[10]  
Baklanov A, 2020, URBAN CLIM, V32, DOI 10.1016/j.uclim.2020.100610