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首页> 外文期刊>Journal of Theoretical Biology >Wing motion transformation to evaluate aerodynamic coupling in flapping wing flight
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Wing motion transformation to evaluate aerodynamic coupling in flapping wing flight

机译:机翼运动转换以评估襟翼飞行中的气动耦合

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摘要

Whether the remarkable flight performance of insects is because the animals leverage inherent physics at this scale or because they employ specialized neural feedback mechanisms is an active research question. In this study, an empirically derived aerodynamics model is used with a transformation involving a delay and a rotation to identify a class of kinematics that provide favorable roll-yaw coupling. The transformation is also used to transform both synthetic and experimentally measured wing motions onto the manifold representing proverse yaw and to quantify the degree to which freely flying insects make use of passive aerodynamic mechanisms to provide proverse roll-yaw turn coordination. The transformation indicates that recorded insect kinematics do act to provide proverse yaw for a variety of maneuvers. This finding suggests that passive aerodynamic mechanisms can act to reduce the neural feedback demands of an insect's flight control strategy. (C) 2014 Elsevier Ltd. All rights reserved.
机译:昆虫卓越的飞行性能是因为动物利用了这种规模的固有物理学,还是因为它们采用了专门的神经反馈机制是一个活跃的研究问题。在这项研究中,将经验导出的空气动力学模型与包含延迟和旋转的转换一起使用,以识别提供有利的横摆耦合的运动学类型。该转换还用于将合成的和实验测量的机翼运动转换到代表偏航的歧管上,并量化自由飞行昆虫利用被动空气动力学机制提供逆偏航转弯协调的程度。转换表明,记录的昆虫运动学确实为各种操纵提供了偏航。这一发现表明,被动空气动力学机制可以降低昆虫的飞行控制策略的神经反馈需求。 (C)2014 Elsevier Ltd.保留所有权利。

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