具有同步和异步肌肉的扑翼系统的效率和控制权衡及工作回路特性。

IF 3.7 2区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Journal of The Royal Society Interface Pub Date : 2025-03-01 Epub Date: 2025-03-19 DOI:10.1098/rsif.2024.0660
Suyash Agrawal, Christopher Rahn, Bo Cheng
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引用次数: 0

摘要

为了实现不同的飞行模式,具有扑翼的自然飞行者面临着能量效率和机翼运动主动控制的双重挑战。据推测,扑翼系统利用共振来提高肌肉的机械输出能量效率,这是仿生扑翼机器人经常遵循的原则。然而,共振会限制主动控制的程度,这是一种植根于机翼运动系统动力学的权衡,可能会反映在肌肉工作循环中。为了系统地研究能源效率如何与主动控制翼拍频率和幅度相权衡,我们在这里开发了一个具有同步或异步动力肌肉的机翼电机系统的简约模型。然后,我们对模型进行了无量纲化,并进行了仿真,以检验模型特性作为Weis-Fogh数和无量纲扑动频率的函数。对于同步动力肌肉,我们的模型预测,在高韦斯-福格数时,能源效率与频率控制而不是幅度控制相权衡;然而,对于具有异步力量肌肉的模型,没有发现这种权衡。单独的工作回路不足以完全捕获机翼发动机特性,因此无法直接反映权衡。最后,利用模拟结果,我们预测了自然飞行函数在Weis-Fogh数接近1的情况下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficiency and control trade-offs and work loop characteristics of flapping-wing systems with synchronous and asynchronous muscles.

Natural fliers with flapping wings face the dual challenges of energy efficiency and active control of wing motion for achieving diverse modes of flight. It is hypothesized that flapping-wing systems use resonance to improve muscle mechanical output energy efficiency, a principle often followed in bioinspired flapping-wing robots. However, resonance can limit the degree of active control, a trade-off rooted in the dynamics of wing motor systems and can be potentially reflected in muscle work loops. To systematically investigate how energy efficiency trades off with active control of wingbeat frequency and amplitude, here we developed a parsimonious model of the wing motor system with either synchronous or asynchronous power muscles. We then non-dimensionalized the model and performed simulations to examine model characteristics as functions of Weis-Fogh number and dimensionless flapping frequency. For synchronous power muscles, our model predicts that energy efficiency trades off with frequency control rather than amplitude control at high Weis-Fogh numbers; however, no such trade-off was found for models with asynchronous power muscles. The work loops alone are insufficient to fully capture wing motor characteristics, and therefore fail to directly reflect the trade-offs. Finally, using simulation results, we predict that natural fliers function at Weis-Fogh numbers close to 1.

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来源期刊
Journal of The Royal Society Interface
Journal of The Royal Society Interface 综合性期刊-综合性期刊
CiteScore
7.10
自引率
2.60%
发文量
234
审稿时长
2.5 months
期刊介绍: J. R. Soc. Interface welcomes articles of high quality research at the interface of the physical and life sciences. It provides a high-quality forum to publish rapidly and interact across this boundary in two main ways: J. R. Soc. Interface publishes research applying chemistry, engineering, materials science, mathematics and physics to the biological and medical sciences; it also highlights discoveries in the life sciences of relevance to the physical sciences. Both sides of the interface are considered equally and it is one of the only journals to cover this exciting new territory. J. R. Soc. Interface welcomes contributions on a diverse range of topics, including but not limited to; biocomplexity, bioengineering, bioinformatics, biomaterials, biomechanics, bionanoscience, biophysics, chemical biology, computer science (as applied to the life sciences), medical physics, synthetic biology, systems biology, theoretical biology and tissue engineering.
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