Structural and CFD Analyses of a Reciprocating-Airfoil (RA) driven UAV Wing under Maximum Lift and Inertia Forces.

Johnson O. Imumbhon, Mateo Landazuri, Yiding Cao
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Abstract

The Reciprocating-Airfoil (RA) driven vertical take-off and landing (VTOL) aircraft is a new aircraft concept that utilizes the reciprocating motion of the wings to provide lift for take-off and landing. The RA wings are shaped like the wings of a fixed-wing airplane and work as fixed wings during the cruise. The wing undergoes substantial linear motion during the take-off and may generate lift similar to a fixed-wing aircraft. The unique structural characteristics of reciprocating wings are their high inertia and lifting force loadings. This study aims to conduct an internal structural analysis of the wing under the maximum lift and inertia force to validate the wing's performance. The reciprocating motion of the wing in a stroke was analyzed to determine its maximum speed in the stroke and its inertia force loading in conjunction with a reciprocating driver. A 3D computational fluid dynamic (CFD) analysis was conducted at the highest angle of attack (AoA) and the determined maximum speed to obtain maximum lift and drag. The results of a finite element analysis (FEA) revealed acceptable stresses, demonstrating a safe load-carrying capacity of the wing structure which may ensure the suitability of the wing for integration with the RA UAV module.
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最大升力和惯性力作用下往复式翼型无人机机翼结构及CFD分析。
往复式翼型(RA)驱动垂直起降(VTOL)飞机是一种新的飞机概念,利用机翼的往复运动为起飞和降落提供升力。RA机翼的形状像固定翼飞机的机翼,在巡航期间充当固定翼。在起飞过程中,机翼经历了大量的直线运动,并可能产生类似于固定翼飞机的升力。往复翼的独特结构特点是其高惯性和升力载荷。本研究旨在对机翼在最大升力和惯性力作用下的内部结构进行分析,验证机翼的性能。分析了机翼在一个行程中的往复运动,并结合往复驱动器确定了其在行程中的最大速度和惯性力载荷。在最大迎角(AoA)和确定的最大速度下进行了三维计算流体动力学(CFD)分析,以获得最大升力和阻力。有限元分析(FEA)的结果显示了可接受的应力,证明了机翼结构的安全承载能力,这可能确保机翼与RA无人机模块集成的适用性。
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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