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首页> 外文期刊>The Journal of Experimental Biology >Neuromuscular control of free-flight yaw turns in the hawkmoth Manduca sexta
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Neuromuscular control of free-flight yaw turns in the hawkmoth Manduca sexta

机译:鹰蛾蝠duc的自由飞行偏航转弯的神经肌肉控制

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摘要

The biomechanical properties of an animal's locomotor structures profoundly influence the relationship between neuromuscular inputs and body movements. In particular, passive stability properties are of interest as they may offer a non-neural mechanism for simplifying control of locomotion. Here, we hypothesized that a passive stability property of animal flight, flapping counter-torque (FCT), allows hawkmoths to control planar yaw turns in a damping-dominated framework that makes rotational velocity directly proportional to neuromuscular activity. This contrasts with a more familiar inertia-dominated framework where acceleration is proportional to force and neuromuscular activity. To test our hypothesis, we collected flight muscle activation timing, yaw velocity and acceleration data from freely flying hawkmoths engaged in planar yaw turns. Statistical models built from these data then allowed us to infer the degree to which the moths inhabit either damping-or inertia-dominated control domains. Contrary to our hypothesis, a combined model corresponding to inertia-dominated control of yaw but including substantial damping effects best linked the neuromuscular and kinematic data. This result shows the importance of including passive stability properties in neuromechanical models of flight control and reveals possible trade-offs between manoeuvrability and stability derived from damping.
机译:动物运动结构的生物力学特性深刻影响神经肌肉输入与身体运动之间的关系。特别地,被动稳定性特性是令人感兴趣的,因为它们可以提供用于简化运动控制的非神经机制。在这里,我们假设动物飞行的被动稳定性,即反扭矩拍打(FCT),允许鹰蛾在阻尼主导的框架中控制平面偏航角,使旋转速度与神经肌肉活动成正比。这与更熟悉的惯性控制框架形成对比,在该框架中,加速度与力和神经肌肉活动成正比。为了检验我们的假设,我们从参与平面偏航转弯的自由飞鹰蛾收集了飞行肌肉激活时间,偏航速度和加速度数据。然后,根据这些数据建立的统计模型使我们能够推断出飞蛾栖息在以阻尼或惯性为主的控制域中的程度。与我们的假设相反,一个组合模型对应于惯性控制的偏航,但包括显着的阻尼效果,可以最好地将神经肌肉和运动学数据联系起来。该结果表明在飞行控制的神经力学模型中包括被动稳定性能的重要性,并揭示了可操纵性与由阻尼产生的稳定性之间的可能取舍。

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