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海星通过产生下压力来附着在表面上。

Sea stars generate downforce to stay attached to surfaces.

机构信息

University of Southern California, Aerospace and Mechanical Engineering, Los Angeles, 90089, USA.

出版信息

Sci Rep. 2021 Feb 25;11(1):4513. doi: 10.1038/s41598-021-83961-z.

Abstract

Intertidal sea stars often function in environments with extreme hydrodynamic loads that can compromise their ability to remain attached to surfaces. While behavioral responses such as burrowing into sand or sheltering in rock crevices can help minimize hydrodynamic loads, previous work shows that sea stars also alter body shape in response to flow conditions. This morphological plasticity suggests that sea star body shape may play an important hydrodynamic role. In this study, we measured the fluid forces acting on surface-mounted sea star and spherical dome models in water channel tests. All sea star models created downforce, i.e., the fluid pushed the body towards the surface. In contrast, the spherical dome generated lift. We also used Particle Image Velocimetry (PIV) to measure the midplane flow field around the models. Control volume analyses based on the PIV data show that downforce arises because the sea star bodies serve as ramps that divert fluid away from the surface. These observations are further rationalized using force predictions and flow visualizations from numerical simulations. The discovery of downforce generation could explain why sea stars are shaped as they are: the pentaradial geometry aids attachment to surfaces in the presence of high hydrodynamic loads.

摘要

潮间带海星通常生活在水流动力负荷极高的环境中,这可能会影响它们附着在表面的能力。虽然像钻入沙中或躲在岩石裂缝中这样的行为反应可以帮助最大限度地减少水流动力负荷,但之前的工作表明,海星也会根据水流条件改变身体形状。这种形态可塑性表明,海星的身体形状可能在水动力方面发挥着重要作用。在这项研究中,我们在水槽测试中测量了附着在表面的海星和球形圆顶模型上的流体力。所有的海星模型都产生了下压力,也就是说,流体将身体推向表面。相比之下,球形圆顶产生了升力。我们还使用粒子图像测速(PIV)测量了模型周围的中平面流场。基于 PIV 数据的控制体积分析表明,下压力的产生是因为海星的身体充当了斜坡,将流体从表面分流。这些观察结果可以通过数值模拟的力预测和流动可视化进一步合理化。下压力产生的发现可以解释为什么海星的形状是这样的:在高水流动力负荷的情况下,五辐射状的几何形状有助于它们附着在表面上。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/99db/7907252/78bc83dd06f4/41598_2021_83961_Fig1_HTML.jpg

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