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Investigation of unsteady aerodynamics effects in cycloidal rotor using RANS solver

机译:使用RANS求解器研究摆线转子中的非定常空气动力学效应

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The cycloidal propeller for a Micro-Aerial Vehicle (MAV)-scale cyclogyro in hover was studied using a 2D Reynolds-averaged Navier-Stokes equations solver. The effects of the blade dynamic stall, parallel Blade Vortex Interaction (BVI), inflow variation and flow curvature were discussed, based on the results of numerical simulation. The results from the 2D Computational Fluid Dynamics simulation indicated that the blade of the cycloidal rotor is actually performing a pitching oscillation, if observed in a moving reference frame. The dynamic stall vortices shed from the upstream blade cause intense parallel BVI on the downstream blade. The interaction will induce upwash and downwash on the downstream blade. This changes the effective reduced frequency and actually delays the stall of the blade, which is beneficial to the thrust generation. There is also strong downwash in the rotor cage and it changes the inflow velocity experienced by the blade. The downwash and flow curvature can either be beneficial or harmful to the thrust generation. The combined effects of dynamic stall, parallel BVI, inflow variation and flow curvature cause large aerodynamic force peaks and ensure the cycloidal rotors work at very low rotation speeds with high thrust. This guarantees that the cycloidal rotors possess at least the same level of hover efficiency as screw propellers.
机译:使用二维雷诺平均Navier-Stokes方程求解器研究了用于悬停的微型航空器(MAV)级摆线陀螺的摆线螺旋桨。在数值模拟的基础上,讨论了叶片动态失速,平行叶片涡相互作用(BVI),流量变化和流曲率的影响。二维计算流体动力学仿真的结果表明,如果在移动参考系中观察到,摆线转子的叶片实际上正在执行俯仰振荡。从上游叶片散发出的动态失速涡流在下游叶片上引起强烈的平行BVI。相互作用将在下游叶片上引起上冲和下冲。这改变了有效降低的频率并实际上延迟了叶片的失速,这有利于推力的产生。转子保持架中也有强烈的向下冲洗现象,它会改变叶片的流入速度。向下冲洗和流动曲率可能对推力产生有利或有害。动态失速,平行BVI,流入变化和流动曲率的综合作用会导致较大的空气动力峰值,并确保摆线转子以很高的推力在非常低的转速下工作。这保证了摆线转子具有至少与螺旋桨相同的悬停效率。

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