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Design and testing of wind deflectors for roof-mounted solar panels

机译:屋顶安装太阳能电池板风偏转器的设计与测试

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The amount of solar energy that can be produced in the US and throughout the world has seen an unprecedented potential to fulfill growing energy demand. Solar panels can be installed on the ground or on the roof of a building. Roof mounted solar panels could experience occasional high wind loads especially lift and drag forces. Solar panels are bolted directly onto the roof and are secured using ballasts as counter weights against the wind loads. We propose the use of efficient wind deflectors designed and strategically placed in front of the panels as reported here. The deflectors under study were proven to minimize the wind loads on solar panels, ensuring the safety of civilians and surrounding property. The present study utilizes wind tunnel testing and computational simulation using the commercial computational fluid dynamics software ANSYS Fluent for a steady, turbulent wind flow (standard k-s model) over an inclined rooftop-solar panel. The study shows promising results in the prediction of the wind forces for an effectively designed wind management system. As specified earlier, results were compared and validated by both wind tunnel experiments and computational simulations for a meaningful conclusion. Solar panels with various aspect ratios for high incoming wind speeds in the range 40-50 m/s (i.e. 90-110 mph) with several angles of attack were modeled and simulated. We report the analysis of high wind loads on the solar panels leading to the design of an optimized wind deflector to counter such loads. It was concluded that an elliptically profiled wind deflector, with uniformly spaced short fins that were positioned before the tilted panels, was proven to minimize the high wind loads by as much as half, compared to the wind loads without the deflector.
机译:可以在美国和整个世界中生产的太阳能量已经看到了才能满足不断增长的能源需求的前所未有的潜力。太阳能电池板可以安装在地面或建筑物的屋顶上。屋顶安装的太阳能电池板可能会出现偶尔的高风负荷,尤其是升力和拖曳力。太阳能电池板直接螺栓固定在屋顶上,并使用压载作为反对风荷载的反重固定。我们建议使用高效的风力偏转器,设计和战略性地放置在面板前面,如在此报告的那样。已证明正在研究的偏转器可最大限度地减少太阳能电池板上的风力载荷,确保平民和周围财产的安全性。本研究利用风洞测试和计算仿真使用商业计算流体动力学软件ANSYS在倾斜的屋顶 - 太阳能电池板上流放稳定的湍流(标准K-S型号)。该研究表明有希望在有效设计的风力管理系统预测风力的预测结果。如前所述,通过风隧道实验和计算模拟来比较和验证结果,以实现有意义的结论。为具有若干攻角的40-50米/秒(即90-110英里/小时)的高进入风速的太阳能电池板具有若干角度的较高的风速。我们报告了对太阳能电池板上的高风负荷的分析,导致设计了优化的风力偏转器来对抗这种负载。得出结论是,与没有偏转器的风负荷相比,被证明,椭圆形轮廓的风力偏转器具有均匀间隔的短翅片,其定位在倾斜的面板之前定位,以使高风负荷最小化。

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