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首页> 外文期刊>The Journal of Experimental Biology >Traction reinforcement n prehensile feet of harvestmen (Arachnida, Opiliones)
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Traction reinforcement n prehensile feet of harvestmen (Arachnida, Opiliones)

机译:Harvestmen的牵引力钢预混物脚(阿拉奇田,滴油)

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Prehensile and gripping organs are recurring structures in different organisms that enhance friction by the reinforcement and redirection of normal forces. The relationship between organ structure and biomechanical performance is poorly understood, despite a broad relevance for microhabitat choice, movement ecology and biomimetics. Here, we present the first study of the biomechanics of prehensile feet in long-legged harvestmen. These arachnids exhibit the strongest sub-division of legs among arthropods, permitting extreme hyperflexion (i.e. curling up the foot tip). We found that despite the lack of adhesive foot pads, these moderately sized arthropods are able to scale vertical smooth surfaces, tithe surface is curved. Comparison of three species of harvestmen differing in leg morphology shows that traction reinforcement by foot wrapping depends on the degree of leg sub-division, not leg length. Differences are explained by adaptation to different microhabitats on trees. The exponential increase of foot section length from distal to proximal introduces a gradient of flexibility that permits adaptation to a wide range of surface curvature while maintaining integrity at strong flexion. A pulley system of the claw depressor tendon ensures the controlled flexion of the high number of adesmatic joints in the harvestman foot These results contribute to the general understanding of foot function in arthropods and showcase an interesting model for the biomimetic engineering of novel transportation systems and surgical probes.
机译:预活塞和夹持器官是不同生物中的重复结构,其增强和重定向正常力的摩擦力。尽管对微藻选择,运动生态学和生物体具有广泛的相关性,但是器官结构与生物力学表现之间的关系很差。在这里,我们介绍了在长腿Harvestmen中的预生脚的生物力学的第一次研究。这些蛛肌腱在节肢动物中表现出最强的腿分段,允许极端的超紧度(即卷曲脚尖)。我们发现,尽管缺乏粘合脚垫,但这些适度尺寸的节肢动物能够缩放垂直光滑的表面,即铁表面是弯曲的。三种Harvestmen在腿部形态不同的比较表明,徒步包裹牵引的牵引力取决于腿部分割的程度,而不是腿长。通过适应树木上的不同微藻似的解释差异。远端到近端的脚段长度的指数增加引入了灵活性的梯度,允许适应各种表面曲率,同时保持强屈曲的完整性。爪压肌腱的滑轮系统确保了收割机脚中的大量凹陷关节的受控屈曲,这些结果有助于对节肢动物的脚部功能的一般性理解,并展示了新型运输系统的仿生工程的有趣模型和手术探针。

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