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Volumetric quantification of fluid flow reveals fishs use of hydrodynamic stealth to capture evasive prey

机译:流体流动的体积定量揭示了鱼类利用流体动力隐身来捕获逃避的猎物

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摘要

In aquatic ecosystems, predation on zooplankton by fish provides a major pathway for the transfer of energy to higher trophic levels. Copepods are an abundant zooplankton group that sense hydromechanical disturbances produced by approaching predators and respond with rapid escapes. Despite this capability, fish capture copepods with high success. Previous studies have focused on the predatory strike to elucidate details of this interaction. However, these raptorial strikes and resulting suction are only effective at short range. Thus, small fish must closely approach highly sensitive prey without triggering an escape in order for a strike to be successful. We use a new method, high-speed, infrared, tomographic particle image velocimetry, to investigate three-dimensional fluid patterns around predator and prey during approaches. Our results show that at least one planktivorous fish (Danio rerio) can control the bow wave in front of the head during the approach and consumption of prey (copepod). This alters hydrodynamic profiles at the location of the copepod such that it is below the threshold required to elicit an escape response. We find this behaviour to be mediated by the generation of suction within the buccopharyngeal cavity, where the velocity into the mouth roughly matches the forward speed of the fish. These results provide insight into how animals modulate aspects of fluid motion around their bodies to overcome escape responses and enhance prey capture.
机译:在水生生态系统中,鱼类对浮游动物的捕食为将能量转移到更高的营养水平提供了主要途径。 pe足类是一个丰富的浮游动物群,可感知掠食者接近而产生的水力机械干扰并迅速逃逸。尽管有这种能力,鱼类捕获co足类动物还是取得了很大的成功。先前的研究集中于掠夺性罢工,以阐明这种相互作用的细节。但是,这些猛击和吸力仅在短距离内有效。因此,小鱼必须紧密接近高度敏感的猎物,而不会触发逃逸,才能使打击成功。我们使用一种新的方法,高速,红外,断层摄影的颗粒图像测速法,研究进近过程中掠食者和被捕食周围的三维流体模式。我们的结果表明,在接近和捕食猎物(足足类)期间,至少有一种鳞翅类鱼类(达尼奥雷诺)可以控制头部前部的弓形波。这改变了pe​​足类的位置处的流体动力学轮廓,使得其低于引起逃逸响应所需的阈值。我们发现这种行为是由颊咽腔内吸力的产生所介导的,进入口腔的速度大致与鱼的前进速度相匹配。这些结果为深入了解动物如何调节其周围体液运动的方面提供了帮助,以克服逃逸反应并增强猎物的捕获能力。

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