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Modeling and Design Exploration of a Tensegrity-Based Twisting Wing

机译:基于矩形的扭曲翼的建模与设计探索

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This paper presents a modeling and design exploration study of a novel twisting wing whose motion is enabled by a tensegrity mechanism. The aerodynamic characteristics of the twisting wing, which does not require control surfaces to modulate its shape, are compared with those of a conventional wing having a control surface. It is shown via computational fluid dynamics analyses that the twisting wing displays higher lift-to-drag ratio than the conventional wing and hence the twisting wing is more aerodynamically efficient. Subsequently, the torsional tensegrity mechanism, composed of multiple tensegrity cylindrical cells forming a column along the wingspan, is described. A finite element model of the wing incorporating this mechanism is developed. Using the model, a design of experimental study of the influence of the topological parameters of the torsional tensegrity mechanism on the twist angle, mass, and stress in different components of the wing is performed. A wingspan of 142.24 cm and a chord length of 25.31 cm are assumed, corresponding to those of the Carl Goldberg Falcon 56 Mk II R/C unmanned aerial vehicle. For a wing of such dimensions, the maximum achievable twist angle from root to tip per unit mass without any component exceeding their allowable stress is 5.93 deg/kg, which is sufficiently large to allow for effective modulation of the aerodynamic characteristics of the wing. The torsional tensegrity mechanism for this design consists of eight cylindrical cells and four sets of actuator wires along the circumference of each cell.
机译:本文介绍了一种新型扭转机翼的建模和设计探索研究,该机翼的运动由张拉整体机构实现。扭转机翼不需要控制面来调节其形状,其气动特性与具有控制面的常规机翼的气动特性进行了比较。计算流体力学分析表明,与传统机翼相比,扭转机翼具有更高的升阻比,因此扭转机翼的空气动力学效率更高。随后,描述了扭转张拉整体机构,该机构由沿翼展形成柱的多个张拉整体圆柱形单元组成。建立了包含该机构的机翼有限元模型。利用该模型,进行了扭转张拉整体机构拓扑参数对机翼不同部件扭转角、质量和应力影响的实验研究设计。假设翼展为142.24厘米,弦长为25.31厘米,与卡尔·戈德堡猎鹰56 Mk II R/C无人机的翼展和弦长一致。对于这种尺寸的机翼,在没有任何部件超过其允许应力的情况下,每单位质量从根部到尖端的最大可实现扭转角为5.93 deg/kg,其足够大,以便有效调节机翼的气动特性。这种设计的扭转张拉整体机构由八个圆柱形单元和沿每个单元圆周的四组执行机构导线组成。

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