可折叠双翼物流无人机气动特性分析

IF 1.1 4区 工程技术 Q3 ENGINEERING, AEROSPACE International Journal of Aerospace Engineering Pub Date : 2023-12-05 DOI:10.1155/2023/3304048
Xiaolu Wang, Wenlong Lu, Weiwei Liu, Changning Chen, Liangyu Zhao
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引用次数: 0

摘要

为此,提出了一种具有可折叠双翼结构的双臂倒v尾无人机,用于物流和运输应用。我们采用了Navier-Stokes解算器来数值模拟稳定的不可压缩流动条件。通过研究关键设计参数对二维状态下气动特性和旁道流场的影响,我们能够提出更优化的可折叠翼设计。在二维分析的基础上,我们对飞机的三维几何形状进行了气动评估。研究结果表明,适当的机翼和间隙参数可以显著提高升力特性,即使在大角度飞行时也能保持较高的升力。具体来说,与单翼飞机相比,双翼飞机在14°迎角时的升力系数提高了27.1%,证明了翼隙设计的有效性。当间隙距离在流动方向和垂直方向上均等于弦长时,气动性能达到最佳。此外,翼型结构、翼轴角度和翼展的正确组合可以改善流场气动特性,同时还可以增强机翼的失速能力。升力系数在攻角为15°时达到最大值,这有可能减少起飞和着陆距离,从而增强无人机的整体安全性。
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Aerodynamic Analysis of a Logistics UAV with Foldable Bi-wing Configuration
Herein, a twin-boom, inverted V-tailed unmanned aerial vehicle (UAV) featuring a foldable bi-wing configuration is proposed for logistics and transportation applications. We employed the Navier–Stokes solver to numerically simulate steady, incompressible flow conditions. By examining the effects of key design parameters on aerodynamic characteristics and bypass flow fields in a two-dimensional state, we were able to suggest a more optimized foldable wing design. Building on the two-dimensional analysis, we performed aerodynamic assessments of the three-dimensional aircraft geometry. Our results indicated that appropriate wing and gap parameters can significantly enhance lift characteristics, maintaining high lift even during large-angle flights. Specifically, when compared to a mono-wing, the lift coefficient of the bi-wing increased by 27.1% at a 14° angle of attack, demonstrating the effectiveness of our wing-and-gap design. Optimal aerodynamic performance was achieved when the gap distance equalled the chord length in both flow and vertical directions. Further, the right combination of airfoil configuration, wing axes angle, and wingspan can improve flow field aerodynamic characteristics, while also enhancing the wing’s stall capacity. The lift coefficient reached its maximum value at an angle of attack of 15°, which has the potential to reduce takeoff and landing distances, thereby enhancing the UAV’s overall safety.
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来源期刊
CiteScore
2.70
自引率
7.10%
发文量
195
审稿时长
22 weeks
期刊介绍: International Journal of Aerospace Engineering aims to serve the international aerospace engineering community through dissemination of scientific knowledge on practical engineering and design methodologies pertaining to aircraft and space vehicles. Original unpublished manuscripts are solicited on all areas of aerospace engineering including but not limited to: -Mechanics of materials and structures- Aerodynamics and fluid mechanics- Dynamics and control- Aeroacoustics- Aeroelasticity- Propulsion and combustion- Avionics and systems- Flight simulation and mechanics- Unmanned air vehicles (UAVs). Review articles on any of the above topics are also welcome.
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