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Design of a shape-memory alloy actuated macro-scale morphing aircraft mechanism

机译:形状记忆合金致动宏观变形飞机机构的设计

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As more alternative, lightweight actuators have become available, the conventional fixed-wing configuration seen on modern aircraft is under investigation for efficiency on a broad scale. If an aircraft could be designed with multiple functional equilibria of drastically varying aerodynamic parameters, one craft capable of 'morphing' its shape could be used to replace two or three designed with particular intentions. One proposed shape for large-scale (geometry change on the same order of magnitude as wingspan) morphing is the Hyper-Elliptical Cambered Span (HECS) wing, designed at NASA Langley to be implemented on an unmanned aerial vehicle (UAV). Proposed mechanisms to accomplish the spanwise curvature (in the y-z plane of the craft) that allow near-continuous bending of the wing are narrowed to a tendon-based DC motor actuated system, and a shape memory alloy-based (SMA) mechanism. At Cornell, simulations and wind tunnel experiments assess the validity of the HECS wing as a potential shape for a blended-wing body craft with the potential to effectively serve the needs of two conventional UAVs, and analyze the energetics of actuation associated with a morphing maneuver accomplished with both a DC motor and SMA wire.
机译:作为替代方案,轻型致动器已经面世,现代飞机上常见的传统固定翼配置正在为提高效率进行研究。如果一架飞机可以设计成具有急剧变化的空气动力学参数的多种功能平衡,则可以使用一种能够“改变”其形状的飞行器来代替两三架专门设计的飞机。一种用于大规模(与翼展相同数量级的几何形状变化)变形的拟议形状是超椭圆弧度跨度(HECS)机翼,该机翼是由NASA Langley设计的,将在无人飞行器(UAV)上实现。为实现机翼的近乎连续弯曲而实现的翼展方向弯曲(在飞机的y-z平面中)的拟议机制被缩小为基于肌腱的DC电动机驱动系统,以及基于形状记忆合金的(SMA)机制。在康奈尔大学,模拟和风洞实验评估了HECS机翼作为混合机翼飞机的潜在形状的有效性,并具有有效满足两种常规无人机需求的潜力,并分析了与变型机动相关的驱动能量使用直流电动机和SMA导线均可完成。

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