提高地中海西部海岸建筑的气候适应能力——融合被动和主动自然通风冷却技术

Nikola Pešić, A. Alcojor, Jaime R. Calzada
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摘要

本文介绍了通过合并和优化选定的自然通风技术来提高地中海气候环境下空间冷却能源效率的考虑能力。本分析的第一部分定义了一套基于交叉通风和风扇辅助高级自然通风的特定配置的控制策略。目标是主要利用夜间较低的温度范围,因为受当前气候变化影响较小,并在减少白天冷却能源负荷方面反映出这种潜力。该研究的第二部分考察了将已定义的控制策略整合到一个气候响应型建筑形式的中层办公楼中,该建筑位于加泰罗尼亚海岸线上的三个不同地理位置——巴塞罗那、特拉萨和塔拉戈纳。为了提供每种应用控制策略的能源效率的比较概述,建筑模型在建筑性能模拟环境中平行暴露于当前和未来估计的气候变化影响,而建立的室内气流模式的一般控制和调整是通过计算流体动力学分析来完成的。所产生的输出表明,在当前气候条件下,实现的冷却能源需求减少在53%至65%之间。展望2050年,这一比例将在58%至62%之间,而到2080年,冷却能源需求的总体降幅将在54%至57%之间。对比研究表明,尽管由于气候变化的影响,白天温度升高,但基于夜间较低温度的生物气候响应建筑形式在未来中长期地中海气候环境中显示出削减冷却能源需求的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Raising Climate Resilience in Buildings on the Western Mediterranean Coast — Merging Passive and Active Natural Ventilative Cooling Techniques
This paper presents the considered capabilities to improve space cooling energy efficiency in the Mediterranean climate ambience by merging and optimizing selected natural ventilative techniques. The first part of this analysis defines a set of control strategies based on specific configurations of cross ventilation and fan-assisted advanced natural ventilation. The objective is to take advantage of principally lower nocturnal temperature ranges, due to being less affected by the current climate change effects, and to reflect such a potential in the reduction of day-time cooling energy loads. The second part of the study examines the integration of defined control strategies into a climate responsive building form of a mid-rise office-type building positioned in three different geograph ical locations along the Catalonian coastline—the cities of Barcelona, Terrassa and Tarragona. In order to provide a comparative overview of energy efficiency for each applied control strategy, the building model is exposed parallel to present and future estimated climate change effects in the building performance simulation environment while the general control and adjustments of established indoor airflow patterns are done by computational fluid dynamics analyses. The generated output demonstrates that under the present-day climate conditions the achieved reduction of cooling energy demands is in the range between 53% and 65%. Looking further at the horizon of 2050, it accounts between 58% and 62%, while in 2080 the overall cut in cooling energy demands is between 54% and 57%. The comparative overview indicates that despite the rise of day-time temperatures due to climate change effects, the proposed bioclimatic responsive building form based on lower nocturnal temperatures displays considered capabilities in cutting cooling energy demands in the Mediterranean climate ambiance in mid- and long-term periods in the future.
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