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Adhesion and friction in gecko toe attachment and detachment

机译:壁虎脚趾附着和分离中的附着力和摩擦力

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摘要

Geckos can run rapidly on walls and ceilings, requiring high friction forces (on walls) and adhesion forces (on ceilings), with typical step intervals of ≈20 ms. The rapid switching between gecko foot attachment and detachment is analyzed theoretically based on a tape model that incorporates the adhesion and friction forces originating from the van der Waals forces between the submicron-sized spatulae and the substrate, which are controlled by the (macroscopic) actions of the gecko toes. The pulling force of a spatula along its shaft with an angle θ between 0 and 90° to the substrate, has a “normal adhesion force” contribution, produced at the spatula-substrate bifurcation zone, and a “lateral friction force” contribution from the part of spatula still in contact with the substrate. High net friction and adhesion forces on the whole gecko are obtained by rolling down and gripping the toes inward to realize small pulling angles θ between the large number of spatulae in contact with the substrate. To detach, the high adhesion/friction is rapidly reduced to a very low value by rolling the toes upward and backward, which, mediated by the lever function of the setal shaft, peels the spatulae off perpendicularly from the substrates. By these mechanisms, both the adhesion and friction forces of geckos can be changed over three orders of magnitude, allowing for the swift attachment and detachment during gecko motion. The results have obvious implications for the fabrication of dry adhesives and robotic systems inspired by the gecko's locomotion mechanism.
机译:壁虎可以在墙壁和天花板上快速运行,需要高摩擦力(在墙壁上)和粘附力(在天花板上),典型的步距约为20毫秒。理论上基于带模型分析壁虎脚附着和分离之间的快速切换,该带模型结合了亚微米尺寸刮铲和底物之间的范德华力产生的粘附力和摩擦力,该力由(宏观)作用控制壁虎的脚趾。刮刀沿其轴与基材之间的夹角为0至90°的拉力具有在刮刀-基材分叉区产生的“法向粘附力”贡献,以及由刮刀-基底分叉区产生的“横向摩擦力”贡献。刮刀的一部分仍与底材接触。通过向下滚动并向内握紧脚趾,以在与基板接触的大量铲刀之间实现小的牵引角θ,可以在整个壁虎上获得较高的净摩擦力和附着力。为了分离,通过向上和向后滚动脚趾将高粘附力/摩擦力迅速降低到非常低的值,这在固定轴的杠杆作用的调节下,将刮刀从基底垂直地剥离。通过这些机制,壁虎的附着力和摩擦力都可以在三个数量级上变化,从而可以在壁虎运动期间快速地进行附着和分离。该结果对于壁虎运动机制的启发对干胶和机器人系统的制造具有明显的意义。

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