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Unsteady forces on an accelerating plate and application to hovering insect flight

机译:加速板上的不稳定力及其在昆虫盘旋中的应用

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摘要

The aerodynamic forces on a flat plate accelerating from rest at fixed incidence in two-dimensional power-law flow are studied analytically and numerically. An inviscid approximation is made in which separation at the two plate edges is modelled by growing spiral vortex sheets, whose evolution is determined by the Birkhoff–Rott equation. A solution based on a similarity expansion is developed, valid when the scale of the separated vortex is much smaller than the plate dimension. The leading order is given by the well-known similarity growth of a vortex sheet from a semi-infinite flat plate, while equations at the second order describe the asymmetric sweeping effect of that component of the free-stream parallel to the plate. Owing to subtle cancellation, the unsteady vortex force exerted on the plate during the starting motion is independent of the sweeping effect and is determined by the similarity solution, to the order calculated. This gives a mechanism for dynamic stall based on a combination of unsteady vortex lift and pure added mass; the incidence angle for maximum vortex lift is $rccos sqrt{3/8},{pprox},52.2^circ$ independent of the acceleration profile. Circulation on the flat plate makes no direct contribution. Both lift and drag force predictions from the unsteady inviscid theory are compared with those obtained from numerical solutions of the two-dimensional unsteady Navier–Stokes equations for an ellipse of high aspect ratio, and with predictions of Wagner's classical theory. There is good agreement with numerical results at high incidence and moderate Reynolds number. The force per unit span predicted by the vortex theory is evaluated for parameters typical of insect wings and is found to be in reasonable agreement with numerical simulations. Estimates for the shed circulation and the size of the start-up vortices are also obtained. The significance of this flow as a mechanism for insect hovering flight is discussed.
机译:分析和数值研究了在二维幂律流中以固定入射角从静止加速的平板上的空气动力。进行了无形近似,其中两个板边缘的分离通过生长的螺旋涡旋片来建模,其旋涡由Birkhoff-Rott方程确定。提出了一种基于相似度展开的解决方案,该解决方案在分离的涡流的比例远小于平板尺寸时有效。领先的顺序是由众所周知的半无限平板涡流片的相似性增长给出的,而第二级的方程式描述了平行于平板的自由流中该分量的不对称波及效应。由于细微的抵消,在开始运动期间施加在板上的非恒定涡旋力与扫掠效果无关,并由相似解确定,与计算的阶次相同。这给出了基于不稳定涡旋升程和纯净附加质量的动态失速机制。最大涡旋升的入射角为$ arccos sqrt {3/8} ,{ approx} ,52.2 ^ circ $,与加速度曲线无关。平板上的流通没有直接贡献。非稳态无粘理论的升力和阻力预测与二维高纵横比椭圆形非稳态Navier-Stokes方程数值解获得的预测结果以及Wagner古典理论的预测结果进行了比较。在高发生率和中等雷诺数下,数值结果具有很好的一致性。通过涡流理论预测的每单位跨度的力针对昆虫翅膀的典型参数进行了评估,并且发现与数值模拟合理地吻合。还可以获得棚流的估计值和启动涡流的大小。讨论了这种流动作为昆虫盘旋飞行机制的重要性。

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  • 作者

    Pullin D. I.; Wang Z. Jane;

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  • 年度 2004
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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