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首页> 外文期刊>The Journal of Experimental Biology >Ground forces applied by galloping dogs
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Ground forces applied by galloping dogs

机译:奔跑的狗施加的地面力量

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The gallop differs from most other quadrupedal gaits in that each limb plays a unique role. This study compares the ground forces applied by the four limbs and uses force differences between limbs to address the question of why the gallop is the fastest quadrupedal gait. Individual ground forces were recorded from each of the four limbs as six dogs galloped down a runway at constant speed. Trials were videotaped at high speed using a camera positioned perpendicular to the runway, and velocity was measured using photosensors. The trailing forelimb applied greater peak vertical forces than the lead forelimb, however the vertical impulses from the two forelimbs were similar because the lead forelimb had a longer contact interval. The trailing forelimb and lead hindlimb applied greater peak accelerating forces and accelerating force impulses than their contralateral limbs despite their tendency to have shorter contact intervals. The accelerating impulse of both forelimbs combined did not differ significantly from that of both hindlimbs. The forelimbs applied a greater decelerating impulse than the hindlimbs, such that their net fore-aft impulse was decelerating whereas that of the hindlimbs was accelerating. The greater accelerating impulse applied by the trailing forelimb and greater decelerating impulse applied by the lead forelimb are consistent with the forelimbs acting as elastic struts rather than being actively retracted. In contrast, greater accelerating forces were produced by the lead hindlimb while the center of mass was lifted, suggesting that the hindlimbs are more actively extended or retracted during stance. The differences in ground forces measured between paired limbs suggest that the lead forelimb and trailing hindlimb are limited in their ability to apply forces by their positions in the stride cycle rather than by their muscular capacity. Although a bound or half-bound would allow more limbs to produce their maximal forces, a gallop may generate higher speeds because it is more efficient. Galloping could be more efficient than other gaits involving sagittal bending if the increased number of ground contact intervals decreased either the decelerating forces applied at the onset of ground contact or the vertical motion of the center of mass.
机译:驰from与大多数其他四足步态不同,因为每个肢体都扮演着独特的角色。这项研究比较了四个肢体施加的地面力,并利用肢体之间的力差来解决为何驰the是最快的四足步态的问题。当六只狗以恒定速度在跑道上疾驰时,记录了来自四个肢体中每个肢体的地面力量。使用垂直于跑道放置的摄像头对录像进行高速录像,并使用光电传感器测量速度。尾部前肢施加的峰值垂直力大于前肢的峰值垂直力,但是由于前肢的接触间隔较长,因此两个前肢的垂直脉冲相似。尽管前肢和前肢后肢的接触间隔较短,但它们的对侧肢体施加的峰值加速力和加速力脉冲大于对侧肢体。两个前肢的加速冲动与两个后肢的加速冲动没有显着差异。前肢施加的减速冲动比后肢施加的冲动更大,因此前肢的净前-后冲动正在减速,而后肢的净前-后冲动正在加速。尾部前肢施加的更大的加速脉冲和前肢前肢施加的更大的减速脉冲与前肢充当弹性支柱而不是主动缩回一致。相反,铅质后肢在举起重心时会产生更大的加速力,这表明后肢在站立时会更积极地伸展或缩回。在成对的四肢之间测得的地面力的差异表明,前肢前肢和后肢的施加力的能力受到步幅周期中位置的限制,而不是受其肌肉能力的限制。尽管束缚或半束缚会使更多的肢体产生最大的作用力,但由于其效率更高,所以驰gall可能会产生更高的速度。如果增加的地面接触间隔减少了地面接触开始时施加的减速力或质心的垂直运动,则奔腾可能比其他涉及矢状弯曲的步态更有效。

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