论文标题

前沿曲率致动对拍打鳍的影响

Effect of leading-edge curvature actuation on flapping fin performance

论文作者

Fernandez-Gutierrez, David, van Rees, Wim M.

论文摘要

射线鳍的鱼能够通过鳍底部的肌肉组织适应鳍的曲率。在这项工作中,我们从数值上研究了这种前沿曲率驱动对重鳍和俯仰鳍的流体动力性能的影响。我们提出了一个几何和数值框架,用于在膜不可扩展性的限制下构建具有施加前沿曲率的射线膜型鳍的形状。该算法与3D Navier-Stokes求解器相结合,使我们能够评估此类鳍片的流体动力性能。为了确定可能形状的空间,我们提出了一个简单的模型,用于通过两个系数分别确定脉络和跨度曲率的两个系数。我们通过模仿被动弹性变形和与流体动力载荷的主动曲率以及计算推力和功率系数以及流体动力效率的策略,从系统地改变这两个参数。我们的结果表明,推力和效率既主要受弦曲率曲率的影响,spanwise曲率对效率的额外益处很小。性能的主要改进是由前沿曲率致动的改变的尾随的运动学变化,这很大程度上可以由刚性的鳍片复制,其弯曲的运动学遵循弯曲鳍的尾随的运动学。 Fin Camber的变化,用于固定的尾随边缘运动学,主要是有益于效率。根据我们的结果,我们讨论了将前沿曲率驱动的用途用作提高拍打鳍性能的强大而多功能的方式。

Ray-finned fish are able to adapt the curvature of their fins through musculature at the base of the fin. In this work we numerically investigate the effects of such leading-edge curvature actuation on the hydrodynamic performance of a heaving and pitching fin. We present a geometric and numerical framework for constructing the shape of ray-membrane type fins with imposed leading-edge curvatures, under the constraint of membrane inextensibility. This algorithm is coupled with a 3D Navier-Stokes solver, enabling us to assess the hydrodynamic performance of such fins. To determine the space of possible shapes, we present a simple model for leading-edge curvature actuation through two coefficients that determine chordwise and spanwise curvature, respectively. We systematically vary these two parameters through regimes that mimic both passive elastic deformations and active curvatures against the hydrodynamic loading, and compute thrust and power coefficients, as well as hydrodynamic efficiency. Our results demonstrate that both thrust and efficiency are predominantly affected by chordwise curvature, with some small additional benefits of spanwise curvature on efficiency. The main improvements in performance are explained by the altered trailing-edge kinematics arising from leading-edge curvature actuation, which can largely be reproduced by a rigid fin whose trailing-edge kinematics follow that of the curving fin. Changes in fin camber, for fixed trailing-edge kinematics, mostly benefit efficiency. Based on our results, we discuss the use of leading-edge curvature actuation as a robust and versatile way to improve flapping fin performance.

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