提高屋顶通风性能:学校建筑Maisotsenko间接蒸发冷却的研究

IF 6.6 2区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Nicolò Morselli, Marco Puglia, Michele Cossu, Simone Pedrazzi, Giulio Allesina, Paolo Tartarini, Alberto Muscio
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引用次数: 0

摘要

通风屋顶包括在建筑屋顶内通过在雨水槽附近和屋脊上创造开口来产生一系列的管道。虽然斜屋顶的气流通常是由浮力驱动的,但对于水平屋顶或为了提高性能,强制对流是必要的。本研究探讨了商用m循环蒸发冷却器作为学校建筑热管理和通风的多功能解决方案的使用。通过将m循环与通风屋顶相结合,研究重点是通过使用产品空气来优化空气更新和冷却,而通常被浪费的工作空气则用于给屋顶空腔通风。通过采用湿度计、分析和CFD模型相结合的方法,证明了在传统的顶部有空腔的屋顶结构中,当使用工作空气给空腔通风时,M-cycle可以减少高达68%的太阳能增益。此外,研究表明,通风腔的位置起着至关重要的作用,在面向室内时提供最佳效果。在这种情况下,它有助于减少高达94%的太阳能增益,从而导致辐射冷表面的发展,积极帮助冷却房间。这些发现为可持续解决方案提供了第一个见解,可以应用于特定案例研究之外,改善室内气候控制并减少对环境的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing ventilated roof performance: A study on Maisotsenko indirect evaporative cooling for school buildings
A ventilated roof consists of generating a series of ducts inside the roof of a building through the creation of openings near the rain gutters and on the ridge. Although in pitched roofs airflow is often buoyancy driven, for horizontal roofs or to enhance performance, forced convection becomes necessary. This study explores the use of a commercially available M-cycle evaporative cooler as a multifunctional solution for thermal management and ventilation in school buildings. By integrating the M-cycle with a ventilated roof, the study focuses on optimizing air renewal and cooling through the use of product air, while the working air, typically wasted, is used to ventilate the roof cavity. By employing an approach that combines psychrometric, analytical, and CFD models, it is demonstrated that, on a traditional roof configuration with cavity on top, the M-cycle can reduce solar gain by up to 68% when working air is used to ventilate the cavity. Furthermore, it is shown that the positioning of the ventilated cavity plays a crucial role, providing the best results when facing indoors. In such cases, it contributes to a solar gain reduction of up to 94%, leading to the development of a radiant cold surface that actively assists in cooling the room. These findings provide a first insight on a sustainable solution that can be applied beyond the specific case study, improving indoor climate control and reducing environmental impact.
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来源期刊
Energy and Buildings
Energy and Buildings 工程技术-工程:土木
CiteScore
12.70
自引率
11.90%
发文量
863
审稿时长
38 days
期刊介绍: An international journal devoted to investigations of energy use and efficiency in buildings Energy and Buildings is an international journal publishing articles with explicit links to energy use in buildings. The aim is to present new research results, and new proven practice aimed at reducing the energy needs of a building and improving indoor environment quality.
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