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An evaluation process for natural ventilation using a scenario-based multi-criteria and multi-interaction analysis

机译:基于场景的多标准和多相交互分析的自然通风评估过程

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This study examines natural ventilation with respect to human thermal comfort conditions using a scenario-based, multi-criteria, and multi-interaction analysis. The proposed methodology evaluates the design development process in terms of decisions on building physics and building geometry during the early design stages to maximize human thermal comfort conditions and reduce cooling load requirements. The methodology integrates a detailed three-dimensional (3D) building and computational fluid dynamics (CFD) modeling within a building information modeling (BIM) platform during the design development stage, which is developed and structured to optimize the evaluation process. The operational characteristics of the building in respect of windows and shutters have important effects on natural ventilation, which in turn influences thermal comfort, and cooling load. Thus, the multi-interaction analysis of natural ventilation is considered with operational schemes of enveloping that are integrated into a 3D model of the building, which is further transformed to a CFD model. Then, four scenarios using a manually operated building opening are created using the BIM platform. Thus, multi-interactions are achieved by developing a 3D-building model, that not only include the building’s functions and physical specifications but also incorporates the envelope’s thermal capacity coupled with openings that have various operational scenarios for natural ventilation. The results show that the correlation between the air temperature and velocity can provide a comfort zone and decrease the cooling load for energy consumption. The numerical results for one scenario 2 show that if the temperature and velocity values are increased together, human sensation as predicted mean vote (PMV) ranges from 0 to 2, which is considered tolerable for summer comfort, whilst the cooling load is reduced by almost 3%.
机译:本研究通过使用基于场景的,多标准和多相互作用分析来检查对人类热舒适条件的自然通气。该方法的方法在早期设计阶段在建筑物理和建筑几何体上的决定方面评估了设计开发过程,以最大限度地提高人类热舒适条件并降低冷却负荷要求。该方法在设计开发阶段,在建筑物信息建模(BIM)平台内集成了一个详细的三维(3D)构建和计算流体动力学(CFD)建模,其开发和结构以优化评估过程。窗户和百叶窗的建筑物的操作特性对自然通风具有重要影响,这反过来影响热舒适度和冷却负荷。因此,通过集成到建筑物的3D模型中的包裹的操作方案考虑了自然通气的多相相互作用分析,其进一步转换为CFD模型。然后,使用BIM平台创建使用手动操作开放的四种场景。因此,通过开发3D建筑模型实现多相,这不仅包括建筑物的功能和物理规格,还包括包络的热容,与具有各种用于自然通气的操作场景的开口。结果表明,空气温度和速度之间的相关性可以提供舒适区并降低能耗的冷却负荷。一个场景2的数值结果表明,如果温度和速度值一起增加,人类的感觉是预测的平均投票(PMV)的范围为0到2,这被认为是夏季舒适性的可容忍,而冷却载荷几乎减少3%。

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