沙漠蝗(Schistocerca gregaria)从柔顺表面跳跃时的运动学和能量学。

IF 2.8 2区 生物学 Q2 BIOLOGY
Journal of Experimental Biology Pub Date : 2024-12-15 Epub Date: 2024-12-16 DOI:10.1242/jeb.248018
Jessica Taylor, D Charles Deeming, Gregory P Sutton
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引用次数: 0

摘要

动物经常会从树叶、松软的地面或柔韧的树枝等基质上跳跃。这给闩介弹簧促动(LaMSA)跳跃动物带来了更大的复杂性,因为弹簧加载系统的工作通常非常迅速,神经反馈无法调整因基质松动而产生的误差。我们研究了一种 LaMSA 跳跃动物--蚱蜢,以确定在它们脚下塌陷的基质的机械特性会如何影响跳跃的运动学特性。我们通过让蚱蜢从两块跳板上跳下进行测量,一块跳板较长,可产生一系列相对硬度,另一块跳板较短、轻得多,但硬度较高。然后将蚱蜢放在跳板上的不同位置,使其达到蚱蜢腿部刚度的 30% 到蚱蜢腿部刚度的 200 倍。当平台硬度小于蚱蜢腿部硬度时,蚱蜢的起飞速度和动能都会降低,但跳跃高度(跳跃轨迹)不会受到影响。当平台刚度大于蚱蜢的刚度时,起飞速度和动能不受影响。当蚱蜢从极轻和极硬的底物上跳下时,表面的反冲力使蚱蜢能够恢复部分损失的能量。因此,当蚱蜢从比其硬度低的基质(如松软的树叶)上跳下时,必须面对较低的起飞速度,但跳跃方向不受影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Kinematics and energetics of the desert locust (Schistocerca gregaria) when jumping from compliant surfaces.

Animals often leap from substrates that give way under them, such as leaves, soft ground or flexible branches. This provides an added complexity for latch-mediated spring-actuated (LaMSA) jumping animals because the spring-loaded system often works so quickly that neural feedback cannot adjust for errors caused by a yielding substrate. We studied a LaMSA jumper, the grasshopper, to determine how the mechanical properties of a substrate giving way under them would affect the kinematics of the jump. We measured this by allowing grasshoppers to leap from two diving boards, a long one that could generate a whole range of relative stiffnesses, and a shorter, much lighter, but stiffer board. Substrate stiffness was manipulated by then placing the grasshopper on different locations on that diving board, presenting from 30% of the grasshopper's leg stiffness to 200 times the grasshoppers leg stiffness. For platform stiffnesses that were less than that of the grasshopper, take-off velocity and kinetic energy were reduced, but jump elevation (the jump trajectory) was unaffected. For stiffnesses that were greater than that of the grasshopper, there was no effect on take-off velocity and kinetic energy. When jumping from an extremely light and stiff substrate, recoil of the surface allowed the grasshopper to recover some of the lost energy. Consequently, when jumping from substrates that are less stiff than they are (such as floppy leaves), grasshoppers must contend with lower take-off velocities, but jump direction is unaffected.

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来源期刊
CiteScore
5.50
自引率
10.70%
发文量
494
审稿时长
1 months
期刊介绍: Journal of Experimental Biology is the leading primary research journal in comparative physiology and publishes papers on the form and function of living organisms at all levels of biological organisation, from the molecular and subcellular to the integrated whole animal.
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