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Flight performance in bats and its ecomorphological implications .

机译:蝙蝠的飞行性能及其生态学意义。

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摘要

Maneuvering abilities have long been considered key factors that influence habitat selection and foraging strategies in bats. To date, however, very little experimental work has been carried out to understand the mechanisms that bats use to perform maneuvers. Here we examined the kinematics of slow-speed turning flight in the lesser short-nosed fruit bat, Cynopterus brachyotis , to understand the basic mechanics employed to perform maneuvers and to compare them with previous findings in bats and other flying organisms. Four individuals were trained to fly in L-shaped flight enclosure that required them to make a 90-degree turn midway through each flight. Flights were recorded with three low light, high-speed videocameras, allowing the three-dimensional reconstruction of the body and wing kinematics. For any flying organisms, turning requires changes of the direction of travel and the reorientation of the body around the center of mass to maintain the alignment with the flight direction. In C. brachyotis, changes in body orientation (i.e., heading) took place during upstroke and preceded the changes in flight direction, which were restricted to the downstroke portion of the wingbeat cycle. Mean change in flight direction was significantly correlated to the mean heading angular velocity at the beginning of the downstroke and to the mean bank angle during downstroke, although only heading velocity was significant when both variables were considered. Body reorientation previous to changes in direction might be a mechanism to maintain the head and body aligned with the direction of travel and thus maximizing spatial accuracy in three-dimensionally complex environments.
机译:长期以来,机动能力一直被认为是影响蝙蝠栖息地选择和觅食策略的关键因素。然而,迄今为止,很少进行实验工作来了解蝙蝠用来执行操纵的机制。在这里,我们研究了短鼻果蝠Cynopterus brachyotis的慢速转弯飞行运动学,以了解执行操纵的基本原理,并将其与蝙蝠和其他飞行生物中的先前发现进行比较。训练了四个人在L形飞行罩中飞行,这需要他们在每次飞行中途进行90度转弯。使用三个微弱的高速摄像机记录了飞行情况,从而实现了机体和机翼运动学的三维重建。对于任何飞行的生物而言,转弯都需要改变行进方向,并使身体围绕重心重新定位,以保持与飞行方向对齐。在短臂梭菌中,身体方向的变化(即,航向)在上风期间发生,并且在飞行方向的变化之前发生,而飞行方向的变化限于机翼节拍周期的下风部分。飞行方向的平均变化与降落开始时的平均航向角速度和降落期间的平均倾斜角显着相关,尽管当同时考虑这两个变量时,只有航向速度才有意义。方向改变之前的身体重新定向可能是一种机制,可以使头部和身体保持与行进方向对齐,从而在三维复杂环境中最大化空间精度。

著录项

  • 作者

    Iriarte-Diaz, Jose.;

  • 作者单位

    Brown University.;

  • 授予单位 Brown University.;
  • 学科 Biology Animal Physiology.;Biology Zoology.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 173 p.
  • 总页数 173
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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