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Thermal performance of double-skin facade with thermal mass.

机译:具有热质量的双层外墙的热性能。

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摘要

In order to mitigate the overheating problem in the warmer seasons, and thereby to improve thermal performance and energy efficiency of the Double-Skin Facade (DSF) system, this study introduced an innovative design approach involving the integration of thermal mass with the air channel of the conventional DSF. Then it proposed a numerical procedure to assess the thermal performance of DSF, and finally investigated the effect of thermal mass on the energy efficiency of such system.;The base-cases were verified at two levels: inter-model verification and verification relying on measurements from mechanically and naturally ventilated outdoor test-cells. At both levels, a generally fair agreement was obtained. After this, parametric studies pertaining to the energy performance of the system were conducted on the effect of thermal mass in unison with different air-channel configurations.;Considerable energy load reductions were found when thermal mass was used in the air-channel, replacing venetian blind slats for mechanically ventilated DSFs; this held true during both summer and winter. In this configuration depending on the airflow path direction, energy savings from 21% to 26% in summer and from 41% to 59% in winter are achievable in compared with conventional DSF with aluminum venetian blind. The savings were found higher in sunny days than cloudy days. On the other hand, naturally ventilated DSFs combined with thermal mass were not found to be energy efficient in winter due to stack effect and airflow rate increase within the air channel.;The initial step in the assessment procedure proposed the development of base-case models, which were able to predict temperature distribution in the DSF with a venetian blind. So too were the base-case models able to determine heating/cooling loads of the perimeter room for both the mechanically and naturally ventilated DSFs. In this procedure, building energy simulation software was used for base-case development; two distinct models were generated: an airflow model and a thermal model. The nodal, unidirectional airflow network method was applied in the case of the naturally ventilated DSF. The thermal model was a transient control volume method which found temperature distribution in discretized air-channel.
机译:为了缓解较暖季节的过热问题,从而改善双层幕墙(DSF)系统的热性能和能效,本研究引入了一种创新的设计方法,该方法涉及将热质量与空气通道的空气通道集成在一起。传统的DSF。然后提出了一种数值方法来评估DSF的热性能,并最终研究了热质量对这种系统的能量效率的影响。;在两种情况下验证了基础案例:模型间验证和基于测量的验证机械和自然通风的室外测试池。在两个层次上,都获得了普遍公平的协议。在此之后,针对不同空气通道配置的热质量的影响进行了与系统能量性能有关的参数研究;;当在空气通道中使用热质量代替威尼斯式时,发现了显着的能量负载降低机械通风DSF的百叶窗板;在夏季和冬季都适用。在这种配置中,取决于气流路径的方向,与采用铝质百叶窗的传统DSF相比,夏季可实现21%到26%的能源节约,冬季可实现41%到59%的能源节约。发现在晴天时,节余要比阴天高。另一方面,由于烟囱效应和空气通道内气流速率的增加,冬季自然通风的DSF与热质量相结合并没有能效。评估程序的第一步提出了基础模型的开发,它们可以通过百叶窗预测DSF中的温度分布。基本案例模型也能够确定机械通风和自然通风DSF的外围空间的加热/冷却负荷。在此过程中,将建筑能耗模拟软件用于基础案例开发。生成了两个不同的模型:气流模型和热模型。自然通风的DSF采用节点单向气流网络方法。热模型是一种瞬态控制体积法,可以发现离散空气通道中的温度分布。

著录项

  • 作者

    Fallahi, Ali.;

  • 作者单位

    Concordia University (Canada).;

  • 授予单位 Concordia University (Canada).;
  • 学科 Engineering Architectural.;Energy.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 204 p.
  • 总页数 204
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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