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Physical modeling of pedestrian energy exchange within the urban canopy

机译:城市雨棚内行人能量交换的物理模型

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A pedestrian-centered conceptual model is used for the computation of energy exchange in the urban environment, based on data measured within a physical model and taking into account the effects of dimensional scaling. The physical open-air scale model, used for evaluating the influence of street canyon geometry on microclimatic conditions and pedestrian energy exchange within the urban canopy, enables measurement of climatic parameters with natural radiation and turbulence effects—potentially overcoming some of the limitations common to more conventional research techniques. The modeling technique is applied under typical hot-arid summer conditions in a desert region, and patterns of pedestrian energy exchange are compared with previous findings from full-scale measurements in a climatically similar actual urban setting. Results clearly indicate that a compact street canyon geometry may reduce pedestrian heat gain during most summer hours, but that the reduction is contingent on design aspects such as street axis orientation. Comparison of model results with full-scale measurements shows the ability of the scale model to reproduce patterns observed in full scale, and to reveal distinctions that are impractical to quantify using field studies alone.
机译:以步行者为中心的概念模型基于在物理模型中测得的数据并考虑了尺寸缩放的影响,用于计算城市环境中的能量交换。物理露天比例模型用于评估街道峡谷的几何形状对城市冠层内微气候条件和行人能量交换的影响,可以测量具有自然辐射和湍流效应的气候参数,从而有可能克服一些其他常见的局限性常规研究技术。该建模技术是在沙漠地区典型的炎热夏季条件下应用的,并且将行人能量交换的模式与气候相似的实际城市环境中的全面测量的先前发现进行了比较。结果清楚地表明,紧凑的街道峡谷几何形状可能会在大多数夏季减少步行者的热量获取,但这种减少取决于设计方面,例如街道轴线方向。模型结果与全尺寸测量的比较表明,该比例模型具有再现全尺寸观察到的模式的能力,并能够揭示难以单独使用现场研究进行量化的区别。

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