论文标题

限制热响应微凝胶的喷气驱动粘性运动

Jet-driven viscous locomotion of confined thermoresponsive microgels

论文作者

Tanasijević, Ivan, Jung, Oliver, Koens, Lyndon, Mourran, Ahmed, Lauga, Eric

论文摘要

我们考虑在两个平面表面之间的狭窄空间中定期加热和冷却下,在周期加热和冷却下,微型,不对称的热蛋白水凝胶丝带(微凝胶)的动力学。由于温度的变化,体积和细长微凝胶变化的形状,这导致弯曲和弹性松弛的重复循环以及净运动。设计用于仿生运动的小型设备需要利用在时间上不对称的流动(非股份)以避免扇贝定理的约束并进行净运动。与其他生物学细长的游泳者不同,凝胶中心线的非重新局部弯曲在这里不足以解释整体游泳运动。相反,我们表明,凝胶的游泳是由于水的缩小(或肿胀)而定期散发出(或进入)凝胶本身的水的通量。相关的流动诱导粘应力,导致凝胶上的净推进力。我们为喷射驱动推进的假设得出了一个理论模型,这与我们的实验达到了极好的一致性。

We consider the dynamics of micro-sized, asymmetrically-coated thermoresponsive hydrogel ribbons (microgels) under periodic heating and cooling in the confined space between two planar surfaces. As the result of the temperature changes, the volume and thus the shape of the slender microgel change, which lead to repeated cycles of bending and elastic relaxation, and to net locomotion. Small devices designed for biomimetic locomotion need to exploit flows that are not symmetric in time (non-reciprocal) to escape the constraints of the scallop theorem and undergo net motion. Unlike other biological slender swimmers, the non-reciprocal bending of the gel centreline is not sufficient here to explain for the overall swimming motion. We show instead that the swimming of the gel results from the flux of water periodically emanating from (or entering) the gel itself due to its shrinking (or swelling). The associated flows induce viscous stresses that lead to a net propulsive force on the gel. We derive a theoretical model for this hypothesis of jet-driven propulsion, which leads to excellent agreement with our experiments.

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