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Aerodynamic efficiency of a bioinspired flapping wing rotor at low Reynolds number

机译:低雷诺数的生物启发式襟翼旋翼的空气动力学效率

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摘要

This study investigates the aerodynamic efficiency of a bioinspired flapping wing rotor kinematics which combines an active vertical flapping motion and a passive horizontal rotation induced by aerodynamic thrust. The aerodynamic efficiencies for producing both vertical lift and horizontal thrust of the wing are obtained using a quasi-steady aerodynamic model and two-dimensional (2D) CFD analysis at Reynolds number of 2500. The calculated efficiency data show that both efficiencies (propulsive efficiency-ηp, and efficiency for producing lift-Pf) of the wing are optimized at Strouhal number (St) between 0.1 and 0.5 for a range of wing pitch angles (upstroke angle of attack αu less than 45°); the St for high Pf (St = 0.1 ∼ 0.3) is generally lower than for high ηp (St = 0.2 ∼ 0.5), while the St for equilibrium rotation states lies between the two. Further systematic calculations show that the natural equilibrium of the passive rotating wing automatically converges to high-efficiency states: above 85% of maximum Pf can be obtained for a wide range of prescribed wing kinematics. This study provides insight into the aerodynamic efficiency of biological flyers in cruising flight, as well as practical applications for micro air vehicle design.
机译:这项研究调查了生物启发式襟翼旋翼运动学的气动效率,该运动学结合了主动垂直襟翼运动和气动推力引起的被动水平旋转。使用准稳态空气动力学模型和二维(2D)CFD分析在雷诺数为2500时获得了产生机翼垂直升力和水平推力的空气动力学效率。计算的效率数据表明,这两种效率(推进效率- ηp和机翼产生升力(Pf)的效率在机翼俯仰角范围(上冲攻角αu小于45°)的Strouhal数(St)在0.1和0.5之间进行了优化;通常,高Pf(St St = 0.1〜0.3)的St低于高ηp(St = 0.2〜0.5)的St,而平衡旋转状态下的St位于两者之间。进一步的系统计算表明,被动旋转机翼的自然平衡会自动收敛到高效状态:对于各种规定的机翼运动学而言,可以获得最大Pf的85%以上。这项研究提供了在巡航飞行中生物传单的空气动力学效率的见解,以及微型飞机设计的实际应用。

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