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A hybrid approach for evaluating wind flow over a complex terrain

机译:一种用于评估复杂地形上风流量的混合方法

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摘要

Wind speeds over a complex terrain were estimated using a hybrid approach consisting of numerical and large scale wind tunnel simulations. Numerical simulations were performed to identify three critical wind directions out of 12 different wind directions (0 degrees-330 degrees at 30 degrees intervals). These simulations provided the inflow conditions for the wind tunnel tests since the area of topography modeled in the numerical simulation was much larger compared to the wind tunnel test model. Wind tunnel tests were conducted at the state-of-the-art wind testing facility, the Wind Engineering, Energy and Environment (WindEEE) Dome, where the multi-fan (60 fans) inlet facilitated replication of the inflow as determined by the numerical simulations for each of the three critical wind directions. Mean and 3-s gust wind speeds were calculated at 17 different locations on the topography for each of the three critical wind directions. Speed-Up factors at each location were obtained for the most conservative wind speed and then compared with the speed-up factors recommended by the National Building Code of Canada. In general, the building code over-predicted the speed-up factors on the complex topography investigated in the present study.
机译:使用具有数值和大规模风洞模拟的混合方法估计复杂地形上的风速。执行数值模拟以识别在12个不同的风向(0度-330度以30度间隔)的三个临界风向。这些模拟提供了风洞测试的流入条件,因为与数值模拟中建模的地形面积与风洞试验模型相比大得多。风隧道试验是在最先进的风测试设施,风工程,能量和环境(WinDeee)圆顶上进行的,其中多风扇(60风扇)入口便于通过数值确定的流入的复制三个临界风向中的每一个的模拟。平均值和3-S阵风速度在三个临界风向中的每一个上的17个不同的位置计算。为最保守的风速获得每个地点的加速因子,然后与加拿大国家建筑码建模的加速因素相比。通常,建筑规则过度预测了本研究中研究复杂地形的加速因子。

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