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串联飞行蛇翼型空气动力学相互作用的数值分析。

Numerical Analysis of the Aerodynamic Interactions in Tandem Flying Snake Airfoils.

作者信息

Gong Yuchen, Guo Jiacheng, He Alexander, Sun Ye, Dong Haibo

机构信息

Department of Mechanical and Aerospace Engineering, University of Virginia, Charlottesville, VA 22903, USA.

Department of Aerospace Engineering, University of Maryland, College Park, MD 20740, USA.

出版信息

Biomimetics (Basel). 2025 Mar 12;10(3):174. doi: 10.3390/biomimetics10030174.

Abstract

During gliding, flying snakes flatten their ribs to create an airfoil-like cross-section and adopt S-shape postures, allowing upstream body segments to generate wake structures that affect the aerodynamic performance of downstream segments. This study investigates these interactions using numerical simulations of two-dimensional snake cross-sectional airfoils. By employing an immersed-boundary-method-based incompressible flow solver with tree topological local mesh refinement, various foil positions and movements were analyzed. The results show that aligning the downstream foil with the upstream foil reduces lift production by 86.5% and drag by 96.3%, leading to a 3.77-fold increase in the lift-to-drag ratio compared to a single airfoil. This improvement is attributed to the vortex-wedge interaction between the upstream vortex and the following foil's leading edge (wedge), which enhances the gliding efficiency of the posterior body. Furthermore, integrating specific pitching motions with coordinated vortex shedding could further optimize its lift production. These findings provide valuable insights into the aerodynamics of tandem flying snake airfoils, offering guidance for configuring optimal body postures for improving gliding efficiency.

摘要

在滑行过程中,飞蛇会展开肋骨以形成类似机翼的横截面,并采用S形姿态,使上游身体部分产生尾流结构,从而影响下游部分的空气动力学性能。本研究通过对二维蛇形横截面机翼进行数值模拟来研究这些相互作用。通过使用基于浸入边界法的不可压缩流求解器并结合树形拓扑局部网格细化,分析了各种机翼位置和运动情况。结果表明,将下游机翼与上游机翼对齐可使升力产生降低86.5%,阻力降低96.3%,与单个机翼相比,升阻比提高了3.77倍。这种改进归因于上游涡旋与后续机翼前缘(楔形)之间的涡旋-楔形相互作用,它提高了后段身体的滑行效率。此外,将特定的俯仰运动与协调的涡旋脱落相结合可以进一步优化其升力产生。这些发现为串联飞蛇机翼的空气动力学提供了有价值的见解,为配置最佳身体姿态以提高滑行效率提供了指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/580b/11940367/e2b90fdbfa68/biomimetics-10-00174-g001.jpg

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