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Bumblebees minimize control challenges by combining active and passive modes in unsteady winds

机译:BumbleBees通过在不稳定的风中结合主动和被动模式来最大限度地减少控制挑战

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The natural wind environment that volant insects encounter is unsteady and highly complex, posing significant flight-control and stability challenges. It is critical to understand the strategies insects employ to safely navigate in natural environments. We combined experiments on free flying bumblebees with high-fidelity numerical simulations and lower-order modeling to identify the mechanics that mediate insect flight in unsteady winds. We trained bumblebees to fly upwind towards an artificial flower in a wind tunnel under steady wind and in a von Kármán street formed in the wake of a cylinder. Analysis revealed that at lower frequencies in both steady and unsteady winds the bees mediated lateral movement with body roll - typical casting motion. Numerical simulations of a bumblebee in similar conditions permitted the separation of the passive and active components of the flight trajectories. Consequently, we derived simple mathematical models that describe these two motion components. Comparison between the free-flying live and modeled bees revealed a novel mechanism that enables bees to passively ride out high-frequency perturbations while performing active maneuvers at lower frequencies. The capacity of maintaining stability by combining passive and active modes at different timescales provides a viable means for animals and machines to tackle the challenges posed by complex airflows.
机译:挥霍昆虫遭遇的自然风环境是不稳定的,非常复杂,构成了显着的飞行控制和稳定性挑战。了解战略昆虫的昆虫在自然环境中安全地驾驶至关重要。我们将实验与高保真数值模拟和低阶建模的免费飞行大黄蜂相结合,以识别在不稳定风中介导昆虫飞行的机制。我们培训了大黄蜂,在稳定的风中,在风洞中朝着人造花中飞行,并且在圆筒尾部形成的vonKármán街道。分析显示,在稳定和不稳定的较低频率下,蜜蜂介导的横向运动与体辊典型的铸造运动。在类似条件下大黄蜂的数值模拟允许分离飞行轨迹的被动和有源部件。因此,我们派生了描述这两个运动组件的简单数学模型。自由飞行现场和建模蜜蜂之间的比较揭示了一种新的机制,使得能够在较低频率下执行活跃的动作时被动地乘坐高频扰动。通过在不同时间尺度结合被动和有源模式来保持稳定性的能力为动物和机器提供了一种可行的手段,以解决复杂气流所带来的挑战。

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