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Scaling and mechanics of carnivoran footpads reveal the principles of footpad design

机译:食肉动物脚垫的缩放和力学揭示了足垫设计的原理

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摘要

In most mammals, footpads are what first strike ground with each stride. Their mechanical properties therefore inevitably affect functioning of the legs; yet interspecific studies of the scaling of locomotor mechanics have all but neglected the feet and their soft tissues. Here we determine how contact area and stiffness of footpads in digitigrade carnivorans scale with body mass in order to show how footpads' mechanical properties and size covary to maintain their functional integrity. As body mass increases across several orders of magnitude, we find the following: (i) foot contact area does not keep pace with increasing body mass; therefore pressure increases, placing footpad tissue of larger animals potentially at greater risk of damage; (ii) but stiffness of the pads also increases, so the tissues of larger animals must experience less strain; and (iii) total energy stored in hindpads increases slightly more than that in the forepads, allowing additional elastic energy to be returned for greater propulsive efficiency. Moreover, pad stiffness appears to be tuned across the size range to maintain loading regimes in the limbs that are favourable for long-bone remodelling. Thus, the structural properties of footpads, unlike other biological support-structures, scale interspecifically through changes in both geometry and material properties, rather than geometric proportions alone, and do so with consequences for both maintenance and operation of other components of the locomotor system.
机译:在大多数哺乳动物中,脚垫是每次大步走的第一步。因此,它们的机械性能不可避免地会影响腿部的功能。然而,关于运动力学尺度的种间研究几乎忽略了脚及其软组织。在这里,我们确定数字级食肉动物中脚垫的接触面积和刚度如何与体重成比例,以显示脚垫的机械性能和尺寸如何变化以保持其功能完整性。随着体重在几个数量级上的增加,我们发现:(i)脚的接触面积无法跟上体重增加的步伐;因此,压力会增加,从而使大型动物的脚垫组织面临更大的损坏风险; (ii)但是垫的刚度也增加了,因此大型动物的组织必须承受较小的应变; (iii)后垫板中存储的总能量比前垫板中的总能量增加得更多,从而可以返回更多的弹性能量,从而提高推进效率。而且,似乎在整个尺寸范围内都调整了垫的刚度,以保持四肢的负荷状态,这有利于长骨重塑。因此,与其他生物支撑结构不同,脚垫的结构特性通过几何形状和材料特性的变化而不是单独的几何比例在种间成比例地缩放,并且这样做对运动系统的其他部件的维护和操作都有影响。

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