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Influence of thickness on performance characteristics of non-sinusoidal plunging motion of symmetric airfoil

机译:厚度对对称翼型非正弦切入运动性能的影响

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For the past few decades flapping wing aerodynamics has attracted a great deal of research interest from both the aeronautical and biological communities pertaining to the development of MAVs. The objective of this study is to examine and understand the effect of non-dimensional plunge amplitude and reduced frequency on propulsive performance of NACA 4-digit airfoil series and to examine the performance characteristics of square plunge motion and trapezoidal plunge motion. Two dimensional flow simulations around plunging symmetric aerofoils were performed using FLUENT. The simulations were carried out at Reynolds number of 20000 using incompressible laminar, NS solver. The reduced frequency (k) was varied from 0.5-5 and the plunging amplitude (h) was varied from 0.25-1.5. The plunging motions to the aerofoils were provided through UDFs. The effect of variation of k and h on the thrust coefficient (C-T), power-input coefficient (C-P) and propulsive efficiency (eta) is studied. C-T value is maximum for square plunge profile for all the airfoils. However, for a given value of h, with the increase in k, C-T increases with increasing thickness of the airfoil and reaches a maximum value for airfoil thickness of NACA0018 and then starts decreasing. With varying h and k, it was observed that the propulsive efficiency reached a peak value and the peak shifts to higher h and k with increasing airfoil thickness. From the above study, it was concluded that airfoil thickness played a major part in influencing the thrust generation at low Strouhal number. However, at high Strouhal numbers airfoils showed diverse trends with respect to thrust generation. Sinusoidal plunging motion was more efficient but generated less thrust when compared to square and trapezoidal plunging motions. (C) 2018 Elsevier Masson SAS. All rights reserved.
机译:在过去的几十年中,襟翼空气动力学已引起航空和生物界与MAV的发展有关的大量研究兴趣。这项研究的目的是检查和了解无量纲跳动幅度和降低的频率对NACA 4位翼型系列推进性能的影响,并检验方型跳动和梯形跳动的性能特征。使用FLUENT进行了围绕对称对称翼型下降的二维流动模拟。使用不可压缩层流NS求解器以20000的雷诺数进行了仿真。降低的频率(k)在0.5-5之间变化,下降幅度(h)在0.25-1.5之间变化。通过UDF提供了对机翼的猛降运动。研究了k和h的变化对推力系数(C-T),功率输入系数(C-P)和推进效率(eta)的影响。对于所有翼型,方形切入轮廓的C-T值均为最大值。但是,对于给定的h值,随着k的增加,C-T随着翼型厚度的增加而增加,并达到NACA0018翼型厚度的最大值,然后开始减小。随着h和k的变化,观察到推进效率达到峰值,并且随着翼型厚度的增加,该峰向更高的h和k移动。从以上研究可以得出结论,在低Strouhal数下,翼型厚度是影响推力产生的主要因素。然而,在高Strouhal数时,机翼在推力产生方面显示出不同的趋势。与正方形和梯形的下陷运动相比,正弦的下陷运动效率更高,但产生的推力更小。 (C)2018 Elsevier Masson SAS。版权所有。

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