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Beyond power amplification: latch-mediated spring actuation is an emerging framework for the study of diverse elastic systems

机译:超出功率放大:闩锁介导的弹簧致动是用于研究各种弹性系统的新兴框架

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Rapid biological movements, such as the extraordinary strikes of mantis shrimp and accelerations of jumping insects, have captivated generations of scientists and engineers. These organisms store energy in elastic structures (e.g. springs) and then rapidly release it using latches, such that movement is driven by the rapid conversion of stored elastic to kinetic energy using springs, with the dynamics of this conversion mediated by latches. Initially drawn to these systems by an interest in the muscle power limits of small jumping insects, biologists established the idea of power amplification, which refers both to a measurement technique and to a conceptual framework defined by the mechanical power output of a system exceeding muscle limits. However, the field of fast elastically driven movements has expanded to encompass diverse biological and synthetic systems that do not have muscles - such as the surface tension catapults of fungal spores and launches of plant seeds. Furthermore, while latches have been recognized as an essential part of many elastic systems, their role in mediating the storage and release of elastic energy from the spring is only now being elucidated. Here, we critically examine the metrics and concepts of power amplification and encourage a framework centered on latch-mediated spring actuation (LaMSA). We emphasize approaches and metrics of LaMSA systems that will forge a pathway toward a principled, interdisciplinary field.
机译:快速的生物动作,例如非凡的螳螂虾和跳跃昆虫的加速度,都迷住了几代科学家和工程师。这些有机体在弹性结构(例如弹簧)中储存能量,然后使用闩锁快速释放它,使得通过使用弹簧通过储存的弹性对动能的快速转化,这种转换的动力学通过闩锁的动态驱动。最初对这些系统的兴趣通过对小跳蚤昆虫的肌肉电力限制来说,生物学家建立了功率放大的想法,这是指测量技术和由系统的机械功率输出限定的概念框架,超过肌肉限制。然而,快速弹性的运动领域已经扩展到包含不同的生物和合成系统,这些系统没有肌肉 - 例如真菌孢子的表面张力弹射器和植物种子的发射。此外,虽然闩锁被认为是许多弹性系统的重要组成部分,但它们在介导从弹簧中介导的储存和释放弹性能量的作用仅被阐明。在这里,我们批判性地检查功率放大的指标和概念,并鼓励以闩锁介导的弹簧致动(Lamsa)为中心的框架。我们强调了Lamsa系统的方法和指标,将促使通往原则,跨学科领域的途径。

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