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不使用腿部跳跃:叩头虫(叩甲科)的跳跃在形态上受到限制。

Jumping without using legs: the jump of the click-beetles (Elateridae) is morphologically constrained.

机构信息

Technion Autonomous System Program and the Faculty of Aerospace Engineering, Technion, Haifa, Israel.

出版信息

PLoS One. 2011;6(6):e20871. doi: 10.1371/journal.pone.0020871. Epub 2011 Jun 16.

Abstract

To return to their feet, inverted click-beetles (Elateridae) jump without using their legs. When a beetle is resting on its dorsal side, a hinge mechanism is locked to store elastic energy in the body and releases it abruptly to launch the beetle into the air. While the functional morphology of the jumping mechanism is well known, the level of control that the beetle has over this jumping technique and the mechanical constraints governing the jumps are not entirely clear. Here we show that while body rotations in air are highly variable, the jumps are morphologically constrained to a constant "takeoff" angle (79.9°±1.56°, n = 9 beetles) that directs 98% of the jumping force vertically against gravity. A physical-mathematical model of the jumping action, combined with measurements from live beetle, imply that the beetle may control the speed at takeoff but not the jumping angle. In addition, the model shows that very subtle changes in the exact point of contact with the ground can explain the vigorous rotations of the body seen while the beetle is airborne. These findings suggest that the evolution of this unique non-legged jumping mechanism resulted in a jumping technique that is capable of launching the body high into the air but it is too constrained and unstable to allow control of body orientation at landing.

摘要

为了重新站起来,倒甲虫(Elateridae)在不使用腿的情况下跳跃。当甲虫以背部着地休息时,一个铰链机构会锁定以储存身体中的弹性能量,并突然释放以将甲虫弹入空中。虽然跳跃机构的功能形态已经很清楚,但甲虫对这种跳跃技术的控制程度以及控制跳跃的机械约束并不完全清楚。在这里,我们表明,虽然在空中的身体旋转高度可变,但跳跃在形态上受到限制,以恒定的“起飞”角度(79.9°±1.56°,n=9 只甲虫),将 98%的跳跃力垂直于重力方向。跳跃动作的物理数学模型,结合对活体甲虫的测量,表明甲虫可以控制起飞速度,但不能控制跳跃角度。此外,该模型表明,与地面的接触点的微小变化可以解释在空中时甲虫看到的身体剧烈旋转。这些发现表明,这种独特的无腿跳跃机制的进化导致了一种跳跃技术,能够将身体高高弹入空中,但它受到太多限制且不稳定,无法在着陆时控制身体的方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a62/3116849/c340a5a4e8d7/pone.0020871.g001.jpg

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