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Air speeds of migrating birds observed by ornithodolite and compared with predictions from flight theory

机译:由鸟类探测器观测到迁徙鸟类的空气速度,并与飞行理论的预测进行比较

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摘要

We measured the air speeds of 31 bird species, for which we had body mass and wing measurements, migrating along the east coast of Sweden in autumn, using a Vectronix Vector 21 ornithodolite and a Gill WindSonic anemometer. We expected each species' average air speed to exceed its calculated minimum-power speed (V-mp), and to fall below its maximum-range speed (V-mr), but found some exceptions to both limits. To resolve these discrepancies, we first reduced the assumed induced power factor for all species from 1.2 to 0.9, attributing this to splayed and up-turned primary feathers, and then assigned body drag coefficients for different species down to 0.060 for small waders, and up to 0.12 for the mute swan, in the Reynolds number range 25 000-250 000. These results will be used to amend the default values in existing software that estimates fuel consumption in migration, energy heights on arrival and other aspects of flight performance, using classical aeronautical theory. The body drag coefficients are central to range calculations. Although they cannot be measured on dead bird bodies, they could be checked against wind tunnel measurements on living birds, using existing methods.
机译:我们使用Vectronix Vector 21鸟眼经纬仪和Gill WindSonic风速仪,测量了31种鸟类的风速,对它们进行了体重和机翼测量,并于秋天在瑞典东海岸移动。我们预计每个物种的平均风速将超过其计算的最小功率速度(V-mp),并降至其最大范围速度(V-mr)以下,但发现这两个限制都有一些例外。为了解决这些差异,我们首先将所有物种的假定感应功率因数从1.2降低到0.9,将其归因于张开且翘起的初级羽毛,然后将不同物种的体阻力系数分配给小涉禽,其最低阻力为0.060,然后提高雷诺数范围25 000-250 000,则将其降低到0.12(静音天鹅)。这些结果将用于修正现有软件中的默认值,该软件使用以下方法估算迁移时的油耗,到达时的能量高度以及飞行性能的其他方面。古典航空理论。车身阻力系数是范围计算的核心。尽管无法在死鸟身上测量它们,但是可以使用现有方法将它们与活鸟的风洞测量值进行比较。

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