蒲公英
涡流
涡流环
机械
阻力
空气动力学
物理
多孔性
航空航天工程
材料科学
工程类
复合材料
医学
病理
中医药
替代医学
作者
Cathal Cummins,Madeleine Seale,Alice Macente,Daniele Certini,Enrico Mastropaolo,Ignazio Maria Viola,Naomi Nakayama
出处
期刊:Nature
[Nature Portfolio]
日期:2018-10-01
卷期号:562 (7727): 414-418
被引量:256
标识
DOI:10.1038/s41586-018-0604-2
摘要
Wind-dispersed plants have evolved ingenious ways to lift their seeds1,2. The common dandelion uses a bundle of drag-enhancing bristles (the pappus) that helps to keep their seeds aloft. This passive flight mechanism is highly effective, enabling seed dispersal over formidable distances3,4; however, the physics underpinning pappus-mediated flight remains unresolved. Here we visualized the flow around dandelion seeds, uncovering an extraordinary type of vortex. This vortex is a ring of recirculating fluid, which is detached owing to the flow passing through the pappus. We hypothesized that the circular disk-like geometry and the porosity of the pappus are the key design features that enable the formation of the separated vortex ring. The porosity gradient was surveyed using microfabricated disks, and a disk with a similar porosity was found to be able to recapitulate the flow behaviour of the pappus. The porosity of the dandelion pappus appears to be tuned precisely to stabilize the vortex, while maximizing aerodynamic loading and minimizing material requirements. The discovery of the separated vortex ring provides evidence of the existence of a new class of fluid behaviour around fluid-immersed bodies that may underlie locomotion, weight reduction and particle retention in biological and manmade structures.
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