Fluid-structure interaction enhances the aerodynamic performance of flapping wings: a computational study

T. Nakata, R. Noda, Hao Liu
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引用次数: 6

Abstract

Insect wings change its shape passively by the aerodynamic and inertial forces when flapping, which can greatly affect its aerodynamic performances. In order to confirm the importance of the fluid-structure interaction in flapping wing aerodynamics, we performed computational fluid-structure interaction analyses of a hovering hawkmoth with ‘virtual’ vacuum conditions that can adjust the effect of the aerodynamic force on the deformation of flapping wings. It is turned out that the large part of the wing deformation, such as the wing twist, is induced by the inertial force as reported previously, but the adjustment of the wing deformation by the aerodynamic force can greatly affect the kinematics and the aerodynamics of flapping wings. While the wing deformation, regardless of the contribution of the aerodynamic force, can increase the aerodynamic power, force and efficiency of flapping wings, the wing deformation adjusted in response to the unsteady aerodynamics of flapping wings can further enhance the aerodynamic performance. These results not only reveal the influence of the wing deformation on the aerodynamic performance of flapping wings, but also point out the great importance of the fluid-structure interaction in the aerodynamics of insect flight and the design of bio-inspired micro aerial vehicles.
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流固耦合增强扑翼气动性能的计算研究
昆虫翅膀在扑动过程中受气动和惯性力的影响,被动地改变了翅膀的形状,这对昆虫翅膀的气动性能有很大影响。为了证实流固耦合在扑翼气动中的重要性,我们在“虚拟”真空条件下对悬停的飞蛾进行了流固耦合计算分析,该条件可以调节气动力对扑翼变形的影响。结果表明,机翼变形(如机翼扭曲)的很大一部分是由惯性力引起的,而气动力对机翼变形的调节会对扑翼的运动学和气动性能产生很大的影响。在不考虑气动动力贡献的情况下,机翼变形可以提高扑翼的气动功率、动力和效率,而根据扑翼的非定常气动特性进行调整的机翼变形可以进一步提高气动性能。这些结果不仅揭示了机翼变形对扑翼气动性能的影响,而且指出了流固耦合在昆虫飞行空气动力学和仿生微型飞行器设计中的重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Biomechanical Science and Engineering
Journal of Biomechanical Science and Engineering Engineering-Biomedical Engineering
CiteScore
0.90
自引率
0.00%
发文量
18
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