Improving thermal comfort in hot-arid Phoenix, Arizona courtyards: Exploring the cooling benefits of ground surface cover and shade

IF 7.1 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Muge Unal , Ariane Middel
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引用次数: 0

Abstract

Courtyards possess unique geometric features that regulate sun exposure, wind, and humidity in hot climates. This study examines how surface materials and shading affect thermal comfort in courtyards in the hot-arid climate of Phoenix, Arizona, through human-biometeorological observations and microclimate modeling. Three courtyards on Arizona State University's main campus, varying in size, aspect ratio, surface cover, and landscape design, were selected as case studies. The thermal environment of these courtyards was first evaluated for a typical hot and dry summer day in June 2023 using the ENVI-met 5.0.1 microclimate model. On-site measurements of key microclimatic variables, including air temperature (Ta), relative humidity (RH), wind speed (WS), and mean radiant temperature (MRT), were collected using the MaRTy platform to validate the model. Three scenario groups were then developed: the first tested various surface materials (concrete, grass, and water), the second assessed the impact of shade-sail coverage, and the third explored the impact of 3D vegetation configurations (central and bordered planting). In total, 24 scenarios were evaluated based on their effects on thermal comfort, using MRT and Physiological Equivalent Temperature (PET) as key metrics. Statistical analyses, including ANOVA and Tukey's HSD tests, were conducted to compare the spatial differences in thermal exposure and comfort across the scenarios. Additionally, hotspot analysis identified the courtyards most affected by MRT changes. The findings show that shading was the most effective intervention for enhancing thermal comfort, reducing MRT by up to 10 °C and PET by 2–3 °C during peak hours (14:00 h). Surface materials also played a significant role, with grass cover lowering MRT, while water surfaces, though increasing MRT slightly, improved PET by raising humidity. Vegetation, especially in bordered configurations, enhanced airflow, and improved comfort, proving a promising strategy for optimizing courtyard design.

Abstract Image

改善炎热干旱的亚利桑那州凤凰城庭院的热舒适:探索地表覆盖和遮荫的冷却效益
庭院具有独特的几何特征,可以在炎热的气候中调节阳光照射、风和湿度。本研究通过人类生物气象观测和小气候模拟,研究了亚利桑那州凤凰城炎热干旱气候下,地表材料和遮阳对庭院热舒适的影响。亚利桑那州立大学主校区的三个庭院在大小、纵横比、地表覆盖和景观设计上各不相同,被选为案例研究。采用ENVI-met 5.0.1小气候模型对2023年6月典型的夏季干热天气进行了热环境评价。利用MaRTy平台收集了包括气温(Ta)、相对湿度(RH)、风速(WS)和平均辐射温度(MRT)在内的关键小气候变量的现场测量数据,以验证该模型。然后开发了三个场景组:第一个测试了各种表面材料(混凝土,草和水),第二个评估了遮阳帆覆盖的影响,第三个探索了3D植被配置(中央和边缘种植)的影响。以MRT和生理等效温度(PET)为关键指标,共评估了24种场景对热舒适的影响。统计分析,包括方差分析和Tukey的HSD测试,比较了不同场景下热暴露和舒适度的空间差异。此外,热点分析还确定了受捷运变化影响最大的庭院。研究结果表明,遮阳是提高热舒适性的最有效干预措施,在高峰时段(14:00 h),遮阳可使MRT降低10°C, PET降低2-3°C。表面材料也起着重要作用,草地覆盖降低了MRT,而水面虽然略微提高了MRT,但通过提高湿度提高了PET。植被,特别是在边缘配置中,增强气流,改善舒适度,证明了优化庭院设计的一个有前途的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Building and Environment
Building and Environment 工程技术-工程:环境
CiteScore
12.50
自引率
23.00%
发文量
1130
审稿时长
27 days
期刊介绍: Building and Environment, an international journal, is dedicated to publishing original research papers, comprehensive review articles, editorials, and short communications in the fields of building science, urban physics, and human interaction with the indoor and outdoor built environment. The journal emphasizes innovative technologies and knowledge verified through measurement and analysis. It covers environmental performance across various spatial scales, from cities and communities to buildings and systems, fostering collaborative, multi-disciplinary research with broader significance.
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