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A qualitative ventilation model for prototype cavity structure

机译:原型腔结构的定性通风模型

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Creating a physical model structure that is able to simulate different ventilation scenarios is essential for improving the understanding of passive designs that are both sustainable and environmentally acceptable. The purpose of this investigation was to build a physical prototype model that could be heated from both the outside and inside to duplicate an occupied structure during the morning hours. This model was then used to provide information for two Computational Fluid Dynamic (CFD) models to firstly compare and then validate results obtained from experimental data. A sample of computational findings was initially presented in Chawynski et al. (2003). This paper presents the experimental sections used to validate numerical simulation in Chawynski et al. (2003) and incorporates findings from Chawynski (2004). The experimental component consisted of approximately 80% of the overall investigation. The findings enabled a better scientific understanding of how a structure's thermal performance can be improved by mechanically forcing air (to simulate outside wind) inside to both lower and create an overall uniform internal air temperature distribution in a cavity enclosure. A chart-based model is proposed to qualitatively gauge the temperature inside a cavity enclosure for different ventilation scenarios.
机译:创建能够模拟不同通风场景的物理模型结构对于增进对可持续性和环境可接受的被动式设计的理解至关重要。这项研究的目的是建立一个物理原型模型,该模型可以从外部和内部进行加热,以在早上的时间复制一个占用的结构。然后,使用该模型为两个计算流体动力学(CFD)模型提供信息,以首先比较并验证从实验数据中获得的结果。 Chawynski等人最初提出了计算结果的样本。 (2003)。本文介绍了用于验证Chawynski等人的数值模拟的实验部分。 (2003)并结合Chawynski(2004)的发现。实验部分约占整体调查的80%。这些发现使人们对如何通过机械强制内部的空气(以模拟外部风)降低并在腔体外壳内形成整体均匀的内部空气温度分布的方式改善结构的热性能有了更科学的认识。提出了一种基于图表的模型,以定性地测量不同通风情况下空腔外壳内部的温度。

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