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Effect of wing fold angles on the terminal descent velocity of double-winged autorotating seeds, fruits, and other diaspores

机译:翼折角对双翼飞机种子,水果和其他透过的末端血液血液血速的影响

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摘要

Wind dispersal of seeds is an essential mechanism for plants to proliferate and to invade new territories. In this paper we present a methodology used in our recent work [Rabault, Fauli, and Carlson, Phys. Rev. Lett. 122, 024501 (2019)] that combines 3D printing, a minimal theoretical model, and experiments to determine how the curvature along the length of the wings of autorotating seeds, fruits, and other diaspores provides them with an optimal wind dispersion potential, i.e., minimal terminal descent velocity. Experiments are performed on 3D-printed double-winged synthetic fruits for a wide range of wing fold angles (obtained from normalized curvature along the wing length), base wing angles, and wing loadings to determine how these affect the flight. Our experimental and theoretical models find an optimal wing fold angle that minimizes the descent velocity, where the curved wings must be sufficiently long to have horizontal segments, but also sufficiently short to ensure that their tip segments are primarily aligned along the horizontal direction. The curved shape of the wings of double winged autorotating diaspores may be an important parameter that improves the fitness of these plants in an ecological strategy.
机译:种子风化是植物增殖和侵入新界的基本机制。在本文中,我们提出了我们最近的工作中使用的方法[Rabault,Fauli和Carlson,Phy。 rev. lett。 122,024501(2019)]结合了3D打印,最小理论模型和实验,以确定如何沿着自转种子,水果和其他堤坝的翅膀长度的曲率为它们提供最佳的风分散电位,即,最小终端血液血液速度。在3D印刷双翼合成果实上进行实验,用于宽范围的翼折角(从沿机翼长度的归一化曲率获得),基翼角和翼装载,以确定这些如何影响飞行。我们的实验和理论模型发现了一种最佳的翼折角,最小化弯曲速度,其中弯曲的翼必须足够长,以具有水平段,而且还足够短,以确保它们的尖端段沿水平方向对准。双翼飞机自动膜翅膀的弯曲形状可能是在生态策略中提高这些植物的适应性的重要参数。

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