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Ultra-fast underwater suction traps

机译:超快速水下吸引器

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摘要

Carnivorous aquatic Utricularia species catch small prey animals using millimetre-sized underwater suction traps, which have fascinated scientists since Darwin's early work on carnivorous plants. Suction takes place after mechanical triggering and is owing to a release of stored elastic energy in the trap body accompanied by a very fast opening and closing of a trapdoor, which otherwise closes the trap entrance watertight. The exceptional trapping speed—far above human visual perception—impeded profound investigations until now. Using high-speed video imaging and special microscopy techniques, we obtained fully time-resolved recordings of the door movement. We found that this unique trapping mechanism conducts suction in less than a millisecond and therefore ranks among the fastest plant movements known. Fluid acceleration reaches very high values, leaving little chance for prey animals to escape. We discovered that the door deformation is morphologically predetermined, and actually performs a buckling/unbuckling process, including a complete trapdoor curvature inversion. This process, which we predict using dynamical simulations and simple theoretical models, is highly reproducible: the traps are autonomously repetitive as they fire spontaneously after 5–20 h and reset actively to their ready-to-catch condition.
机译:食肉的水生乌头菌物种使用毫米大小的水下吸阱捕获小型猎物,自达尔文早期从事食肉植物的研究以来,这吸引了科学家的注意。吸力是在机械触发之后发生的,这是由于捕集器体内释放的储存的弹性能量的释放,同时闸门的打开和关闭非常迅速,否则会关闭捕集器入口的水密性。迄今为止,超乎寻常的诱捕速度(远超人类的视觉感知能力)阻碍了深入的研究。使用高速视频成像和特殊的显微镜技术,我们获得了时间分辨的门移动记录。我们发现,这种独特的捕集机制可在不到一毫秒的时间内进行抽吸,因此跻身已知最快的植物运动之列。流体加速度达到很高的值,几乎没有被捕食的动物逃脱的机会。我们发现门变形在形态上是预先确定的,并且实际上执行了屈曲/展开过程,包括完整的活板门曲率反转。我们使用动力学模拟和简单的理论模型预测的这一过程具有高度可重复性:陷阱在5-20小时后自发点火并主动重置为随时可捕的状态,因此具有自主重复性。

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