机翼变形改善了在飞行磨坊中飞行的蓝斑蝇向前飞行的空气动力性能。

IF 3.7 2区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Journal of The Royal Society Interface Pub Date : 2024-07-01 Epub Date: 2024-07-17 DOI:10.1098/rsif.2024.0076
Shih-Jung Hsu, Hankun Deng, Junshi Wang, Haibo Dong, Bo Cheng
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引用次数: 0

摘要

昆虫的翅膀是一种柔性结构,其变形具有复杂的时空模式。现有的翅膀变形研究强调了翅膀变形在提高空气动力性能方面不可或缺的作用。在这里,我们研究了蓝斑蝇在磁力飞行磨坊中半自由飞行时的前向飞行;我们利用高速摄像和无标记表面重建量化了翅膀表面变形,并利用计算流体动力学研究了其对空气动力、功率和效率的影响。结果表明,苍蝇的翅膀在翼根附近表现出很大的外倾角,并沿着翼展扭曲,因为它们主要是围绕锁骨弯曲线的挠曲耦合效应。在产生最大推力的上冲过程中,这种挠度对上冲的影响更大。与变形翼相比,未变形翼产生了 59-98% 的推力和 54-87% 的推力效率(即推力和功率比)。机翼扭曲使气动压力中心向前后移动,可能提高了气动效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wing deformation improves aerodynamic performance of forward flight of bluebottle flies flying in a flight mill.

Insect wings are flexible structures that exhibit deformations of complex spatiotemporal patterns. Existing studies on wing deformation underscore the indispensable role of wing deformation in enhancing aerodynamic performance. Here, we investigated forward flight in bluebottle flies, flying semi-freely in a magnetic flight mill; we quantified wing surface deformation using high-speed videography and marker-less surface reconstruction and studied the effects on aerodynamic forces, power and efficiency using computational fluid dynamics. The results showed that flies' wings exhibited substantial camber near the wing root and twisted along the wingspan, as they were coupled effects of deflection primarily about the claval flexion line. Such deflection was more substantial for supination during the upstroke when most thrust was produced. Compared with deformed wings, the undeformed wings generated 59-98% of thrust and 54-87% of thrust efficiency (i.e. ratio of thrust and power). Wing twist moved the aerodynamic centre of pressure proximally and posteriorly, likely improving aerodynamic efficiency.

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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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