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Computational fluid dynamics simulation of the aerodynamics of a high solidity, small-scale vertical axis wind turbine

机译:高强度小规模垂直轴风力涡轮机空气动力学的计算流体动力学模拟

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A computational fluid dynamics simulation was performed for a small-scale, high solidity (a = 0.48) H-type Darrieus vertical axis wind turbine. Two-dimensional unsteady Reynolds-averaged Navier-Stokes equations were solved for the turbine numerical model, which has a large stationary domain and smaller rotating subdomain connected by a sliding mesh interface. The simulation results were first validated against steady-state airfoil data. The model was then used to solve for three rotating blades with constant ambient flow velocity (Re = 360,000) over numerous blade speed ratios. The high solidity and the associated low blade speed ratio and rotational speed of the turbine result in complex flow-blade interaction mechanisms. These include dynamic stall resulting in vortex shedding, vortex impingement on the source blade and significant flow momentum extraction causing reduced power production from the downstream blade pass.
机译:对小型,高强度(a = 0.48)H型Darrieus垂直轴风力涡轮机进行了计算流体动力学仿真。为汽轮机数值模型求解了二维非定常雷诺平均Navier-Stokes方程,该模型具有较大的固定域和较小的通过滑动网格接口连接的旋转子域。首先针对稳态机翼数据验证了仿真结果。然后,该模型用于求解在众多叶片速度比上具有恒定环境流速(Re = 360,000)的三个旋转叶片。涡轮机的高强度以及相应的低叶片速比和转速导致了复杂的流叶相互作用机制。这些包括动态失速导致涡流脱落,涡流撞击到源叶片上以及明显的流动动量提取,从而降低了下游叶片通道产生的功率。

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