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Flow and transport effect caused by the stalk contraction cycle of Vorticella convallaria

机译:短螺旋体铃虫茎秆收缩周期引起的流动和运输效应

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摘要

Vorticella convallaria is a protozoan attached to a substrate by a stalk which can contract in less than 10 ms, translating the zooid toward the substrate with a maximum Reynolds number of ∼1. Following contraction, the stalk slowly relaxes, moving the zooid away from the substrate, which results in creeping flow. Although Vorticella has long been believed to contract to evade danger, it has been suggested that its stalk may contract to enhance food transport near the substrate. To elucidate how Vorticella utilizes its contraction-relaxation cycle, we investigated water flow caused by the cycle, using a computational fluid dynamics model validated with an experimental scale model and particle tracking velocimetry. The simulated flow was visualized and analyzed by tracing virtual particles around the Vorticella. It is observed that one cycle can displace particles up to ∼190 μm with the maximum net vertical displacement of 3–4 μm and that the net transport effect becomes more evident over repeated cycles. This transport effect appears to be due to asymmetry of the contraction and relaxation phases of the flow field, and it can be more effective on motile food particles than non-motile ones. Therefore, our Vorticella model enabled investigating the fluid dynamics principle and ecological role of the transport effects of Vorticella's stalk contraction.
机译:铃状轮虫是一种原生动物,通过茎杆附着在基质上,可以在不到10μs的时间内收缩,从而使动物类动物的雷诺数最大约为1。收缩后,茎杆缓慢松弛,将动物界动物从基质移开,这导致蠕动。尽管长期以来人们一直认为涡虫会收缩以逃避危险,但已经有人提出,它的茎杆可能会收缩以增强基质附近的食物运输。为了阐明Vorticella如何利用其收缩松弛松弛周期,我们使用了经实验规模模型和粒子跟踪测速仪验证的计算流体动力学模型,研究了由该周期引起的水流。通过追踪涡虫周围的虚拟粒子,可以对模拟流进行可视化和分析。可以观察到,一个循环可以置换最大190μm的颗粒,最大净垂直位移为3-4μm,并且在重复的循环中,净传输效果变得更加明显。这种运输效应似乎是由于流场的收缩和松弛相的不对称所致,并且对运动食品颗粒的影响要比非运动食品更为有效。因此,我们的Vorticella模型能够研究流体动力学原理以及Vorticella茎秆收缩的运输效应的生态作用。

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