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ROTARY VERSUS FLAPPING FLIGHT: AN APPLICATION STUDY FOR OPTIMAL PERIODIC CONTROL THEORY

机译:旋转对襟翼飞行:最佳周期控制理论的应用研究

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This paper uses optimal periodic control (OPC) theory as a framework for assessing the relative efficiency of revolving versus flapping wing trajectories in insect-sized flight problems. The literature already offers both experimental and simulation-based comparisons between these two flight modes. A collective conclusion from these studies is that the potential advantages of flapping flight depend on many factors such as Reynolds number, wing size/morphology, wing kinematic constraints, aerodynamic efficiency metrics, etc. This makes it necessary to develop a unified framework for comparing these flight modes under various conditions. We address this need by using the n test from OPC theory as a tool for analyzing the degree to which one can improve the efficiency of steady rotary hovering flight through periodic trajectory perturbations. A quasi-steady insect flight model from the literature is adopted as a case study. The paper applies the K test to this model. It then concludes by solving for the optimal lift-power Pareto fronts for both flight modes, and using these Pareto fronts to confirm the results predicted by the n test.
机译:本文使用最优周期控制(OPC)理论作为框架,评估昆虫大小的飞行问题中旋转翼和扑翼轨迹的相对效率。文献已经提供了这两种飞行模式之间基于实验和基于仿真的比较。这些研究的总体结论是,扑翼飞行的潜在优势取决于许多因素,例如雷诺数,机翼尺寸/形态,机翼运动学约束,空气动力效率指标等。因此,有必要建立一个统一的框架来比较这些因素。在各种条件下的飞行模式。我们通过使用OPC理论的n检验作为一种工具来分析这一需求,该工具可以分析通过周期性轨迹扰动可以提高稳定旋转悬停飞行的效率的程度。以文献中的准稳态昆虫飞行模型为例。本文将K检验应用于该模型。然后,通过求解两种飞行模式的最优升力-功率帕累托前沿,并使用这些帕累托前沿来确认通过n检验预测的结果,得出结论。

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