生物材料混凝土墙体中动态PCM集成提高围护结构性能:数值评估和多目标优化研究

IF 7.1 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Wendong Li , Mourad Rahim , Bin Wang , Mohammed El Ganaoui , Rachid Bennacer
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引用次数: 0

摘要

相变材料(PCM)在提高建筑围护结构的湿热性能方面具有广阔的应用前景。本研究提出了一种基于生物材料的混凝土墙体内PCM的动态集成方法,旨在优化建筑物的热湿调节。对五种壁面结构进行了数值研究,重点对动态PCM系统进行了评价。结果表明,动态PCM壁面具有优异的性能,夏季温度波动降低62.5%,局部蒸汽压降低63.2%,冬季分别显著提高16.1%和6.3%。此外,采用多目标优化方法,使动态系统的成本和能耗最小,得到了不同气候条件下最平衡的解决方案,并证明了较薄的外墙层可以产生较低的能耗和墙体成本。此外,长期评估进一步确定了间隙冷凝和霉菌生长的风险,特别是在潮湿气候下。总的来说,这项工作强调了动态集成PCM系统在生物材料墙体中的优势,为节能和弹性建筑围护结构设计提供了一条可行的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing building envelope performance via dynamic PCM Integration in biomaterial concrete walls: A numerical evaluation and multi-objective optimization study
Phase change material (PCM) offers promising potential for enhancing the hygrothermal performance of building envelopes. This study proposes a dynamic integration method of PCM within a biomaterial-based concrete wall, aiming to optimize both thermal and moisture regulation in buildings. A numerical investigation is conducted on five wall configurations, with a focus on evaluating the dynamic PCM system. The results show the dynamic PCM wall’s superior performance, achieving temperature fluctuation reductions of 62.5 % and partial vapor pressure reductions of 63.2 % during summer, alongside significant winter improvements of 16.1 % and 6.3 %, respectively. Furthermore, a multi-objective optimization method to minimize the cost and energy consumption of the dynamic system is applied, obtaining the most balanced solution for different climate conditions, as well as demonstrating that a thinner exterior wall layer is preferred for producing lower energy consumption and wall cost. In addition, a long-term assessment further identified interstitial condensation and mold growth risks, particularly in humid climates. Overall, this work highlights the advantages of dynamically integrated PCM systems in biomaterial walls, offering a viable path toward energy-efficient and resilient building envelope designs.
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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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