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Aerodynamic Sensing as Feedback for Ornithopter Flight Control

机译:空气动力学感应作为鸟类飞行控制的反馈

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Flapping wing vehicles, or ornithopters, have proven difficult to control due to the unsteady flow generated by the high-speed flapping surfaces. To-date, research has focused on computational models from which fixed flapping strokes are optimized. These strokes are then fixed and executed open-loop in practice with flapping speed as the primary control output for climb and descent. This paper investigates the use of a distributed pressure sensing system embedded in the flapping wing surfaces to provide real-time aerodynamic force estimates. These measurements could ultimately be used as a source of feedback for an ornithopter autopilot system. This paper describes the design, construction, and testing of flat plate and airfoil ornithopter wings into which pressure lines were embedded during construction. The embedded pressure lines were tethered to external high-precision pressure sensors, while the wings were mounted to a commercially-available ornithopter body then affixed to an instrumented flap stand. A series of exploratory low-speed wind tunnel tests were conducted during which pressures, airspeed, wing deflections, and overall forces/torques were acquired. Initial data is consistent and is observed to match trends obtained from a panel method simulation used to generate comparative pressure measurements over the flapping stroke.
机译:由于高速拍打表面产生的不稳定流动,挥动翼车或鸟升降机已经证明难以控制。迄今为止,研究专注于从中优化固定拍打笔划的计算模型。然后,在实践中,这些冲程在练习中固定和执行开环,作为爬升和下降的主要控制输出。本文研究了嵌入翼翼表面中的分布式压力传感系统的使用,以提供实时空气动力学力估计。这些测量最终最终可以用作鸟类自动驾驶仪系统的反馈来源。本文介绍了平板和翼型的设计,施工和测试,在施工过程中嵌入压力线的翅膀。嵌入的压力线被系绳到外部高精度压力传感器,而翼安装到市售的鸟床主体,然后将其固定到仪表挡板架上。在该压力,空速,翼偏转和整体力/扭矩进行了一系列探索性低速风隧道试验。初始数据是一致的,并且被观察到匹配从面板方法模拟获得的趋势,用于在拍打行程上产生比较压力测量。

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