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首页> 外文期刊>Journal of the Royal Society Interface >On the diverse roles of fluid dynamic drag in animal swimming and flying
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On the diverse roles of fluid dynamic drag in animal swimming and flying

机译:流体动态阻力在动物游泳与飞行中的不同作用

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Questions of energy dissipation or friction appear immediately when addressing the problem of a body moving in a fluid. For the most simple problems, involving a constant steady propulsive force on the body, a straightforward relation can be established balancing this driving force with a skin friction or form drag, depending on the Reynolds number and body geometry. This elementary relation closes the full dynamical problem and sets, for instance, average cruising velocity or energy cost. In the case of finite-sized and time-deformable bodies though, such as flapping flyers or undulatory swimmers, the comprehension of driving/dissipation interactions is not straightforward. The intrinsic unsteadiness of the flapping and deforming animal bodies complicates the usual application of classical fluid dynamic forces balance. One of the complications is because the shape of the body is indeed changing in time, accelerating and decelerating perpetually, but also because the role of drag (more specifically the role of the local drag) has two different facets, contributing at the same time to global dissipation and to driving forces. This causes situations where a strong drag is not necessarily equivalent to inefficient systems. A lot of living systems are precisely using strong sources of drag to optimize their performance. In addition to revisiting classical results under the light of recent research on these questions, we discuss in this review the crucial role of drag from another point of view that concerns the fluid-structure interaction problem of animal locomotion. We consider, in particular, the dynamic subtleties brought by the quadratic drag that resists transverse motions of a flexible body or appendage performing complex kinematics, such as the phase dynamics of a flexible flapping wing, the propagative nature of the bending wave in undulatory swimmers, or the surprising relevance of drag-based resistive thrust in inertial swimmers.
机译:在解决在流体中移动的身体问题时立即出现能量耗散或摩擦的问题。对于最简单的问题,涉及体内恒定的稳定推进力,可以通过皮肤摩擦或形成阻力来建立直接关系,这取决于雷诺数和车身几何形状。该基本关系缩短了完全动态问题,例如平均巡航速度或能源成本。在有限尺寸和时间可变形的身体的情况下,例如拍打飞行器或波动游泳运动员,驾驶/耗散相互作用的理解并不简单。拍打和变形动物体的内在不稳定使典型流体动力学力平衡的通常应用复杂化。其中一个并发症是因为身体的形状确实在时间内变化,永远地加速和减速,而且还因为拖动的作用(更具体地说,局部阻力的角色)具有两个不同的方面,同时贡献全球耗散和驱动力。这会导致强度阻力不一定相当于低效系统的情况。很多生活系统正恰恰使用强烈的拖源来优化其性能。除了在最近关于这些问题的研究中重新审视古典结果,我们在这篇审查中讨论了拖累的重要作用,涉及动物运动的流体结构相互作用问题。特别地,我们考虑了由二次拖动带来的动态微妙,抵抗柔性体或附件的横向动作,例如柔性拍打翼的相位动态,波动游泳运动员中的弯曲波的传播性质,或拖拉基电阻推力在惯性游泳运动员中的令人惊讶的相关性。

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