热翱翔鸟类的适应性越野优化策略

Göksel Keskin, Olivier Duriez, Pedro Lacerda, Andrea Flack, Máté Nagy
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引用次数: 0

摘要

热翱翔使鸟类能够在觅食或迁徙过程中进行经济高效的飞行。然而,尽管所有翱翔鸟类都能有效地利用垂直风,但这一鸟类群体中的物种在形态上却存在很大差异。空气动力学规则决定了飞行的成本和收益,但根据其生态需求,物种可能会采用不同的行为策略。为了量化这些与形态有关的不同国家的行为策略差异,我们汇编并分析了一个大型数据集,其中包括用高频追踪装置记录的12个翱翔物种的100多个个体的数据。我们量化了翱翔和滑翔时的表现,以及两者结合的整体越野行为。我们的结果证实了 12 个物种的空气动力学理论;翼载荷较大的物种通常比翼载荷较轻的物种飞得更快,因此转弯半径也更大。此外,盘旋半径和最小下沉速度的组合决定了翱翔鸟类能从热气流中获得的最大利益。此外,我们还观察到了鸟类适应热强度的策略谱系,并发现了所有被分析物种的通用越野策略规则。最后,我们新描述的行为规则可以为技术应用提供灵感,比如为自主机器人滑翔机开发自动驾驶系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adaptive cross-country optimisation strategies in thermal soaring birds
Thermal soaring enables birds to perform cost-efficient flights during foraging or migration trips. Yet, although all soaring birds exploit vertical winds effectively, this group contains species that vary strongly in their morphologies. Aerodynamic rules dictate the costs and benefits of flight, but, depending on their ecological needs, species may use different behavioural strategies. To quantify these morphology-related differences in behavioural cross-country strategies, we compiled and analysed a large dataset, which includes data from over a hundred individuals from 12 soaring species recorded with high frequency tracking devices. We quantified the performance during thermalling and gliding flights, and the overall cross-country behaviour that is the combination of both. Our results confirmed aerodynamic theory across the 12 species; species with higher wing loading typically flew faster, and consequently turned on a larger radius, than lighter ones. Furthermore, the combination of circling radius and minimum sink speed determines the maximum benefits soaring birds can obtain from thermals. Also, we observed a spectrum of strategies regarding the adaptivity to thermal strength and uncovered a universal rule for cross-country strategies for all analysed species. Finally, our newly described behavioural rules can provide inspirations for technical applications, like the development of autopilot systems for autonomous robotic gliders.
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