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首页> 外文期刊>The Journal of Experimental Biology >Flight mechanics and control of escape manoeuvres in hummingbirds. I. Flight kinematics
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Flight mechanics and control of escape manoeuvres in hummingbirds. I. Flight kinematics

机译:蜂鸟的飞行力学和逃生动作的控制。一,飞行运动学

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Hummingbirds are nature's masters of aerobatic manoeuvres. Previous research shows that hummingbirds and insects converged evolutionarily upon similar aerodynamic mechanisms and kinematics in hovering. Herein, we use three-dimensional kinematic data to begin to test for similar convergence of kinematics used for escape flight and to explore the effects of body size upon manoeuvring. We studied four hummingbird species in North America including two large species (magnificent hummingbird, Eugenes fulgens, 7.8 g, and blue-throated hummingbird, Lampornis clemenciae, 8.0 g) and two smaller species (broad-billed hummingbird, Cynanthus latirostris, 3.4 g, and black-chinned hummingbirds Archilochus alexandri, 3.1 g). Starting from a steady hover, hummingbirds consistently manoeuvred away from perceived threats using a drastic escape response that featured body pitch and roll rotations coupled with a large linear acceleration. Hummingbirds changed their flapping frequency and wing trajectory in all three degrees of freedom on a stroke-by-stroke basis, likely causing rapid and significant alteration of the magnitude and direction of aerodynamic forces. Thus it appears that the flight control of hummingbirds does not obey the 'helicopter model' that is valid for similar escape manoeuvres in fruit flies. Except for broad-billed hummingbirds, the hummingbirds had faster reaction times than those reported for visual feedback control in insects. The two larger hummingbird species performed pitch rotations and global-yaw turns with considerably larger magnitude than the smaller species, but roll rates and cumulative roll angles were similar among the four species.
机译:蜂鸟是特技飞行表演的自然大师。先前的研究表明,蜂鸟和昆虫在盘旋过程中会在相似的空气动力学机制和运动学方面进化趋同。本文中,我们使用三维运动学数据开始测试用于逃生飞行的运动学的相似收敛性,并探索机体尺寸对操纵的影响。我们研究了北美的四种蜂鸟物种,其中包括两种大型物种(壮丽的蜂鸟,尤金斯富根(Eugenes fulgens),7.8克和蓝喉蜂鸟,兰伯尼clemenciae,8.0克)和两种较小的物种(宽嘴蜂鸟,大头鹰,3.4 g,黑black蜂鸟Archilochus alexandri,3.1克)。从稳定的悬停开始,蜂鸟通过剧烈的逃避响应(始终以身体俯仰和横摇旋转以及较大的线性加速度为特征)始终如一地避开感知到的威胁。蜂鸟在逐个冲程的基础上,在所有三个自由度上都改变了其拍打频率和机翼轨迹,这可能导致空气动力的大小和方向迅速而显着地变化。因此,似乎蜂鸟的飞行控制不遵守“直升机模型”,该模型对于果蝇的类似逃避动作是有效的。除宽嘴蜂鸟外,蜂鸟的反应时间比昆虫视觉反馈控制所报道的要快。与较小的物种相比,两个较大的蜂鸟物种进行的俯仰旋转和全局偏航转弯的幅度要大得多,但四个物种之间的侧倾速率和累积侧倾角相似。

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