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A wind tunnel and numerical study on the surface friction distribution on a flat roof with solar panels

机译:太阳能电池板平屋面摩擦分布的风洞和数值研究

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This work aims to contribute for a better understanding of how solar panels, installed on a flat roof, affect the potential of aeolian erosion of loose particles deposited on it, influencing processes such as snow drifting. Two methodologies are employed, namely wind tunnel experiments and RANS simulation. Several configurations are studied, varying the distance between successive panels placed in tandem, and gap between the panels and the roof, for two wind orientations. The accuracy of the simulations is examined by comparing predicted results against wind tunnel experiments. It is confirmed that computational simulations, by means of k- SST turbulence model, yield the tendency of the static pressure, and also of wall shear stress, distributions along the roof provided that mesh satisfies y(+)<5. It is found that wall friction is considerably affected by the presence of panels and, consequently, the wind erosion process and, therefore, snow drifting on a roof. The computational wall shear stress results are confronted against experimental data, and, taking into account the uncertainty associated to the probes employed, it is found that, despite of high flow complexity, numerical simulations provide reliable information for this research field.
机译:这项工作旨在更好地了解太阳能电池板如何安装在平顶屋顶上,影响到沉积在其上的松散颗粒的潜力,影响雪漂移等过程。采用两种方法,即风洞实验和RAN模拟。研究了几种配置,改变了在串联串联的连续面板之间的距离,以及面板和屋顶之间的间隙,用于两个风取向。通过将预测结果与风洞实验进行比较来检查模拟的准确性。通过K-SST湍流模型确认计算模拟,产生静压的趋势,以及墙面剪切应力,沿着顶部的分布,设置该网状物满足Y(+)<5。发现壁摩擦受到面板的存在的显着影响,因此风蚀过程,因此,雪漂流在屋顶上。计算墙剪切应力结果面临反对实验数据,并且考虑到与所采用的探针相关联的不确定性,发现尽管流量复杂性高,但数值模拟为本研究领域提供了可靠的信息。

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