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首页> 外文期刊>Proceedings of the Royal Society. Mathematical, physical and engineering sciences >Mechanical analyses on the digital behaviour of the Tokay gecko (Gekko gecko) based on a multi-level directional adhesion model
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Mechanical analyses on the digital behaviour of the Tokay gecko (Gekko gecko) based on a multi-level directional adhesion model

机译:基于多层方向粘附模型的Tokay壁虎(Gekko壁虎)数字行为的力学分析

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摘要

This paper proposes a multi-level hierarchical model for the Tokay gecko (Gekko gecko) adhesive system and analyses the digital behaviour of the G. gecko under macro/meso-level scale. The model describes the structures of G. gecko's adhesive system from the nano-level spatulae to the sub-millimetre-level lamella. The G. gecko's seta is modelled using inextensible fibril based on Euler's elastica theorem. Considering the side contact of the spatular pads of the seta on the flat and rigid substrate, the directional adhesion behaviour of the seta has been investigated. The lamella-induced attachment and detachment have been modelled to simulate the active digital hyperextension (DH) and the digital gripping (DG) phenomena. The results suggest that a tiny angular displacement within 0.25. of the lamellar proximal end is necessary in which a fast transition from attachment to detachment or vice versa is induced. The active DH helps release the torque to induce setal non-sliding detachment, while the DG helps apply torque to make the setal adhesion stable. The lamella plays a key role in saving energy during detachment to adapt to its habitat and provides another adhesive function which differs from the friction-dependent setal adhesion system controlled by the dynamic of G. gecko's body.
机译:本文提出了Tokay壁虎(Gekko gecko)胶粘剂系统的多层次分层模型,并在宏观/中观水平尺度上分析了G. gecko的数字行为。该模型描述了G. gecko粘合剂系统的结构,从纳米级刮铲到亚毫米级薄片。 Gecko壁虎的seta是基于Euler弹性定理使用不可伸展的原纤维建模的。考虑到Seta的扁平垫在平坦且刚性的基底上的侧面接触,已经研究了Seta的定向粘附行为。薄片诱导的附着和脱离已被建模以模拟主动数字超伸(DH)和数字抓握(DG)现象。结果表明,微小的角位移在0.25以内。层状近端的“端部”是必要的,其中会引起从连接到分离的快速过渡,反之亦然。活性DH有助于释放扭矩以引起牙结石滑动脱离,而DG有助于施加扭矩以使牙结石稳定。薄片在分离过程中节省能量以适应其栖息地方面发挥着关键作用,并提供了另一种粘合功能,这与壁虎G. Gecko身体的动力学控制的依赖于摩擦的固定粘合系统不同。

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