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逆势飞行:当逆风飞行时,熊蜂更喜欢迎风飞行,并表现出更多可变的运动学。

Going against the flow: bumblebees prefer to fly upwind and display more variable kinematics when flying downwind.

机构信息

Department of Neurobiology, Physiology and Behavior, University of California, Davis, Davis, CA 95616, USA.

Department of Mechanical and Aerospace Engineering, University of California, San Diego, San Diego, CA 92161, USA.

出版信息

J Exp Biol. 2023 Apr 25;226(Suppl_1). doi: 10.1242/jeb.245374. Epub 2023 Apr 18.

Abstract

Foraging insects fly over long distances through complex aerial environments, and many can maintain constant ground speeds in wind, allowing them to gauge flight distance. Although insects encounter winds from all directions in the wild, most lab-based studies have employed still air or headwinds (i.e. upwind flight); additionally, insects are typically compelled to fly in a single, fixed environment, so we know little about their preferences for different flight conditions. We used automated video collection and analysis methods and a two-choice flight tunnel paradigm to examine thousands of foraging flights performed by hundreds of bumblebees flying upwind and downwind. In contrast to the preference for flying with a tailwind (i.e. downwind) displayed by migrating insects, we found that bees prefer to fly upwind. Bees maintained constant ground speeds when flying upwind or downwind in flow velocities from 0 to 2 m s-1 by adjusting their body angle, pitching down to raise their air speed above flow velocity when flying upwind, and pitching up to slow down to negative air speeds (flying backwards relative to the flow) when flying downwind. Bees flying downwind displayed higher variability in body angle, air speed and ground speed. Taken together, bees' preference for upwind flight and their increased kinematic variability when flying downwind suggest that tailwinds may impose a significant, underexplored flight challenge to bees. Our study demonstrates the types of questions that can be addressed with newer approaches to biomechanics research; by allowing bees to choose the conditions they prefer to traverse and automating filming and analysis to examine massive amounts of data, we were able to identify significant patterns emerging from variable locomotory behaviors, and gain valuable insight into the biomechanics of flight in natural environments.

摘要

觅食昆虫在复杂的空中环境中长途飞行,许多昆虫能够在风中保持恒定的地速,从而能够估算飞行距离。尽管昆虫在野外会遇到来自各个方向的风,但大多数基于实验室的研究都采用了静止空气或顺风(即逆风飞行);此外,昆虫通常被迫在单一、固定的环境中飞行,因此我们对它们对不同飞行条件的偏好知之甚少。我们使用自动化视频采集和分析方法以及双选择飞行隧道范式,研究了数百只大黄蜂在顺风和逆风条件下进行的数千次觅食飞行。与迁徙昆虫更喜欢顺风(即逆风)飞行的偏好相反,我们发现蜜蜂更喜欢逆风飞行。当风速从 0 到 2m/s 时,蜜蜂通过调整身体角度在顺风或逆风飞行时保持恒定的地速,逆风飞行时俯下身体以提高飞行速度超过风速,顺风飞行时仰起身体以减缓速度至负风速(相对于气流向后飞行)。顺风飞行的蜜蜂的身体角度、空速和地速变化更大。总的来说,蜜蜂逆风飞行时对顺风飞行的偏好以及它们在顺风飞行时的运动学变异性增加表明,顺风可能对蜜蜂构成重大的、尚未被充分探索的飞行挑战。我们的研究展示了可以通过更新的生物力学研究方法来解决的问题类型;通过允许蜜蜂选择它们更喜欢穿越的条件,并通过自动化拍摄和分析来检查大量数据,我们能够识别出从可变运动行为中出现的显著模式,并深入了解自然环境中的飞行生物力学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/525d/10263149/4b30c6c92257/jexbio-226-245374-g1.jpg

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