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Unsteady aerodynamics of a pitching-flapping-perturbed revolving wing at low Reynolds number

机译:在低雷诺数的投球式拍摄旋转翼的不稳定空气动力学

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摘要

Due to adverse viscous effects, revolving wings suffer universally from low efficiency at low Reynolds number (Re). By reciprocating wing revolving motion, natural flyers flying at low Re successfully exploit unsteady effects to augment force production and efficiency. Here we investigate the aerodynamics of an alternative, i.e., a revolving wing with concomitant unsteady pitching and vertical flapping perturbations (a pitching-flapping-perturbed revolving wing). The current work builds upon a previous study on flapping-perturbed revolving wings (FP-RWs) and focuses on combined effects of pitching-flapping perturbation on force generation and vortex behaviors. The results show that, compared with a FR-RW, pitching motion further (1) reduces the external driving torque for rotating at 0 degrees angle of attack (alpha 0) and (2) enhances lift and leads to a self-rotating equilibrium at alpha 0 = 20 degrees. The power loading of a revolving wing at alpha 0 = 20 degrees can be improved using pitching-flapping perturbations with large pitching amplitude but small Strouhal number. Additionally, an advanced pitching improves the reduction of external driving torque, whereas a delayed pitching weakens both the lift enhancement and the reduction of external driving torque. Further analysis shows that pitching effects can be mainly decomposed into the Leading-Edge-Vortex(LEV)-mediated pressure component and geometric projection component, together they determine the force performance. LEV circulation is found to be determined by the instantaneous effective angle of attack but could be affected asymmetrically between upstroke and downstroke depending on the nominal angle of attack. Pitching-flapping perturbation thus can potentially inspire novel mechanisms to improve the aerodynamic performance of rotary wing micro air vehicles. Published by AIP Publishing.
机译:由于不良粘性效果,旋转翼普遍从低雷诺数(RE)处于低效率。通过往复旋转运动,自然传单在低温下飞行成功利用不稳定的效果来增加力量的生产和效率。在这里,我们研究了替代方案的空气动力学,即旋转翼,伴随着伴随着不稳定的俯仰和垂直拍打扰动(俯仰拍摄的旋转翼)。目前的工作基于先前关于拍打型旋转翅膀(FP-RW)的研究,并侧重于抛光拍摄扰动对力产生和涡流行为的组合作用。结果表明,与FR-RW相比,进一步的俯仰运动(1)减小了以0度的攻击角(α0)和(2)的外部驱动扭矩,增强升力并导致自旋转平衡alpha 0 = 20度。使用具有大俯仰幅度但小的斯特瓜数的俯仰振荡扰动,可以改善α0= 20度的旋转翼的电力负载。另外,先进的俯仰改善了外部驱动扭矩的降低,而延迟间距削弱了提升增强和外部驱动扭矩的降低。进一步的分析表明,俯仰效果可以主要分解成前缘 - 涡旋(LEV)介导的压力分量和几何突出部件,它们在一起它们决定力性能。发现LEV循环通过瞬时攻击角度确定,但可能在上行程和下行之间不对称地影响,这取决于标称攻角。因此,投球拍打扰动可能激发新的机制,以改善旋翼微型空气车辆的空气动力学性能。通过AIP发布发布。

著录项

  • 来源
    《Physics of fluids》 |2018年第5期|共13页
  • 作者单位

    Beihang Univ Sch Transportat Sci &

    Engn Beijing 100191 Peoples R China;

    Beihang Univ Sch Transportat Sci &

    Engn Beijing 100191 Peoples R China;

    Beihang Univ Sch Transportat Sci &

    Engn Beijing 100191 Peoples R China;

    Penn State Univ Dept Mech &

    Nucl Engn University Pk PA 16801 USA;

    Penn State Univ Dept Mech &

    Nucl Engn University Pk PA 16801 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
  • 关键词

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