首页> 美国卫生研究院文献>Proceedings of the Royal Society B: Biological Sciences >Biological microtribology: anisotropy in frictional forces of orthopteran attachment pads reflects the ultrastructure of a highly deformable material.
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Biological microtribology: anisotropy in frictional forces of orthopteran attachment pads reflects the ultrastructure of a highly deformable material.

机译:生物微摩擦学:直翅目附着垫的摩擦力各向异性反映了高度可变形材料的超微结构。

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摘要

Evolutionarily optimized frictional devices of insects are usually adapted to attach to a variety of natural surfaces. Orthopteran attachment pads are composed of hexagonal outgrowths with smooth flexible surfaces. The pads are designed to balance the weight of the insect in different positions and on different materials. In a scanning electron microscopy study followed by freezing-substitution experiments, the ultrastructural architecture of the pad material was visualized. In friction experiments, the interaction was measured between the attachment pad and a polished silicon surface. The inner structure of this material contains distally directed rods, branching close to the surface, and spaces filled with fluid. The specific design of the pad material provides a higher frictional force in the distal direction. Frictional anisotropy is more enhanced at higher normal forces and lower sliding velocities. It is concluded that optimal mechanical functionality of biosystems is the result of a combination of surface structuring and material design.
机译:昆虫的经过进化优化的摩擦装置通常适合于附着在各种自然表面上。直翅目附着垫由具有光滑柔性表面的六角形突起组成。垫的设计旨在在不同位置和不同材料上平衡昆虫的重量。在扫描电子显微镜研究以及随后的冷冻替代实验中,观察到了垫材料的超微结构。在摩擦实验中,测量了附着垫和抛光的硅表面之间的相互作用。这种材料的内部结构包含指向远侧的杆,靠近表面分支和充满流体的空间。垫材料的特定设计在远端方向上提供了更高的摩擦力。在较高的法向力和较低的滑动速度下,摩擦各向异性会进一步增强。结论是,生物系统的最佳机械功能是表面结构和材料设计相结合的结果。

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