首页> 外文期刊>Journal of Avian Biology >Directed flight and optimal airspeeds: homeward-bound gulls react flexibly to wind yet fly slower than predicted
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Directed flight and optimal airspeeds: homeward-bound gulls react flexibly to wind yet fly slower than predicted

机译:定向飞行和最佳空速:向内飞行的海鸥对风有灵活的反应,但飞行速度慢于预期

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Birds in flight are proposed to adjust their body orientation (heading) and airspeed to wind conditions adaptively according to time and energy constraints. Airspeeds in goal-directed flight are predicted to approach or exceed maximum-range airspeeds, which minimize transport costs (energy expenditure per unit distance) and should increase in headwinds and crosswinds. Diagnosis of airspeed adjustment is however obscured by uncertainty regarding birds' goal-directions, transport costs, interrelations with orientation strategy and the attainability of predicted behaviour. To address these issues, we tested whether gulls minimized transport costs through adjustment of airspeed and heading to wind conditions during extended inbound flight over water (180-360 km) to their breeding colony, and introduce a methodology to assess transport (energy) efficiency given wind conditions. Airspeeds, heading, flight mode and energy expenditure were estimated using GPS tracking, accelerometer and wind data. Predicted flight was determined by simulating each trip according to maximum-range airspeeds and various orientation strategies. Gulls employed primarily flapping flight (93%), and negotiated crosswinds flexibly to exploit both high altitude tailwinds and coastal soaring opportunities. We demonstrate that predicted airspeeds in heavy crosswinds depend strongly on orientation strategy and presumed preferred direction. Measured airspeeds increased with headwind and crosswind similarly to maximum-range airspeeds based on full compensation for wind drift, yet remained similar to 30% lower than predicted by all strategies, resulting in slower and 30-35% costlier flight. Interestingly, more energy could be saved through adjustment of airspeed (median 40%) than via orientation strategy (median 4%). Therefore, despite remarkably flexible reaction to wind at sea, these gulls evidently minimized neither time nor energy expenditure. However, airspeeds were possibly over-predicted by current aerodynamic models. This study emphasizes the importance of accounting for orientation strategy when assessing airspeed adjustments to wind and indicates that either the cost or adaptive 'currency' of extended flight among gulls may require revision.
机译:建议在飞行中的鸟类根据时间和能量的限制来适应风的情况,调整其身体方位(航向)和空速。预期目标飞行中的空速将接近或超过最大范围空速,这将使运输成本(每单位距离的能量消耗)最小化,并且应增加逆风和侧风。但是,由于对鸟的目标方向,运输成本,与定向策略的相互关系以及预期行为的可实现性的不确定性,模糊了对空速调整的诊断。为了解决这些问题,我们测试了海鸥是否通过调整空速和在进入水域(180-360 km)到其繁殖群体的长时间入港飞行期间迎风行驶的条件下使运输成本最小化,并介绍了一种评估给定运输(能源)效率的方法风况。空速,航向,飞行模式和能源消耗使用GPS跟踪,加速计和风数据进行估算。通过根据最大范围的空速和各种定向策略模拟每次行程来确定预测的飞行。海鸥主要使用扑翼飞行(93%),并灵活地协商侧风以利用高空顺风和沿海高空飞行的机会。我们证明,在强侧风中的预测空速在很大程度上取决于定向策略和假定的首选方向。测得的风速随逆风和侧风而增加,与基于完全补偿风漂的最大范围风速相似,但仍比所有策略所预测的低30%,从而导致飞行速度变慢且成本降低30-35%。有趣的是,通过调整空速(中值40%)比通过定向策略(中值4%)可以节省更多的能量。因此,尽管对海上风能有非常灵活的反应,但这些海鸥显然没有使时间和能源消耗最小化。但是,当前的空气动力学模型可能会过高地预测空速。这项研究强调了在评估风速对风的调整时考虑定向策略的重要性,并指出可能需要对海鸥之间的扩展飞行的成本或适应性“货币”进行修订。

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