跳跃的
跳跃
工作(物理)
跳跃者
计算机科学
生化工程
环境科学
机械工程
工程类
物理
生物
生理学
量子力学
操作系统
作者
Elliot W. Hawkes,Charles Xiao,Richard-Alexandre Peloquin,Christopher Keeley,Matthew R. Begley,Morgan T. Pope,G. Niemeyer
出处
期刊:Nature
[Springer Nature]
日期:2022-04-27
卷期号:604 (7907): 657-661
被引量:49
标识
DOI:10.1038/s41586-022-04606-3
摘要
For centuries, scientists have explored the limits of biological jump height1,2, and for decades, engineers have designed jumping machines3-18 that often mimicked or took inspiration from biological jumpers. Despite these efforts, general analyses are missing that compare the energetics of biological and engineered jumpers across scale. Here we show how biological and engineered jumpers have key differences in their jump energetics. The jump height of a biological jumper is limited by the work its linear motor (muscle) can produce in a single stroke. By contrast, the jump height of an engineered device can be far greater because its ratcheted or rotary motor can 'multiply work' during repeated strokes or rotations. As a consequence of these differences in energy production, biological and engineered jumpers should have divergent designs for maximizing jump height. Following these insights, we created a device that can jump over 30 metres high, to our knowledge far higher than previous engineered jumpers and over an order of magnitude higher than the best biological jumpers. Our work advances the understanding of jumping, shows a new level of performance, and underscores the importance of considering the differences between engineered and biological systems.
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