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Demonstrations of bio-inspired perching landing gear for UAVs

机译:用于无人机的生物启发栖息着陆齿轮的示范

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Results are presented which demonstrate the feasibility and performance of two concepts of biologically-inspired landing-gear systems that enable bird-sized, unmanned aerial vehicles (UAV's) to land, perch, and take-off from branchlike structures and/or ledges. The first concept follows the anatomy of birds that can grasp ahold of a branch and perch as tendons in their legs are tensioned. This design involves a gravity-activated, cable-driven, underactuated, grasping-foot mechanism. As the UAV lands, its weight collapses a four-bar linkage pulling a cable which curls two opposing, multi-segmented feet to grasp the landing target. Each foot is a single, compliant mechanism fabricated by simultaneouly 3D-printing a flexible thermo-plastic and a stiffer ABS plastic. The design is optimized to grasp structures over a range of shapes and sizes. Quasi-static and flight tests of this landing gear affixed to RC rotorcraft (24 cm to 550 cm in diameter) demonstrate that the aircraft can land, perch, and take-off from a tree branch, rectangular wood board, PVC pipe, metal hand rail, chair armrest, and in addtion, a stone wall ledge. Stability tests show that perching is maintained under base and wind disturbances. The second design concept, inspired by roosting bats, is a two-material, 3D-printed hooking mechanism that enables the UAV to stably suspend itself from a wire or small-diameter branch. The design balances structural stiffness for support and flexibility for the perching process. A flight-test demonstrates the attaching and dis-engaging of a small, RC quadcopter from a suspended line.
机译:提出了结果,展示了两种生物学启动着陆齿轮系统概念的可行性和性能,使鸟类尺寸的无人驾驶车辆(UAV)从分支机构和/或壁架上落地,栖息地和起飞。第一个概念遵循鸟类的鸟类解剖,可以把支撑和鲈鱼抓住,因为腿部的肌腱被张紧。这种设计涉及一种重力激活,电缆驱动,欠压,抓脚机构。随着uAV陆地,其重量坍塌了一个四条键拉动电缆,卷曲两个相对的多分段脚以抓住着陆目标。每只脚是由同时制造的单一,柔顺的机制,通过同时3D打印柔性热塑塑料和硬质吸收塑料。设计经过优化,可在一系列形状和尺寸范围内掌握结构。这种着陆齿轮的准静态和飞行试验贴在RC旋翼飞机(直径24厘米到550厘米),表明飞机可以从树枝,矩形木板,PVC管,金属手中陆地,鲈鱼和起飞。轨道,椅子扶手,以及addtion,石墙壁架。稳定性试验表明,栖息在基础和风扰动下。由栖息蝙蝠启发的第二种设计概念是一种双层的3D印刷钩机构,使得UAV能够稳定地悬挂在线或小直径分支。该设计平衡了栖息过程的支持和灵活性的结构刚度。飞行试验演示了从悬挂线路的小型RC Quadcopter的附接和解除接合。

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