首页> 美国卫生研究院文献>Proceedings of the Royal Society B: Biological Sciences >Structural support not insulation is the primary driver for avian cup-shaped nest design
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Structural support not insulation is the primary driver for avian cup-shaped nest design

机译:结构支撑而非隔热是鸟形杯形巢设计的主要驱动力

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摘要

The nest micro-environment is a widely studied area of avian biology, however, the contribution of nest conductance (the inverse of insulation) to the energetics of the incubating adult and offspring has largely been overlooked. Surface-specific thermal conductance (W °C−1 cm−2) has been related to nest dimensions, wall porosity, height above-ground and altitude, but the most relevant measure is total conductance (G, W °C−1). This study is the first to analyse conductance allometrically with adult body mass (M, g), according to the form G = aMb. We propose three alternative hypotheses to explain the scaling of conductance. The exponent may emerge from: heat loss scaling (M0.48) in which G scales with the same exponent as thermal conductance of the adult bird, isometric scaling (M0.33) in which nest shape is held constant as parent mass increases, and structural scaling (M0.25) in which nests are designed to support a given adult mass. Data from 213 cup-shaped nests, from 36 Australian species weighing 8–360 g, show conductance is proportional to M0.25. This allometric exponent is significantly different from those expected for heat loss and isometric scaling and confirms the hypothesis that structural support for the eggs and incubating parent is the primary factor driving nest design.
机译:巢微环境是鸟类生物学研究广泛的领域,然而,巢电导率(绝缘的反面)对孵化成年和后代能量的贡献却被大大忽略了。表面比热导(W°C −1 cm −2 )与巢的尺寸,壁的孔隙率,地上高度和海拔高度有关,但最相关测量是总电导(G,W°C -1 )。这项研究是第一个根据G = aM b 形式对成人体重(M,g)进行异速电导分析的方法。我们提出了三个备选假设来解释电导的规模。该指数可能来自:热损失定标(M 0.48 ),其中G的标度与成年鸟类的热导率相同,等距标度(M 0.33 )在随着母体质量的增加,巢的形状会保持恒定;以及结构缩放比例(M 0.25 ),其中的巢被设计成可支撑给定的成年质量。来自澳大利亚的36种重达8–360 g的213个杯状巢的数据显示,电导与M 0.25 成正比。这种异形指数与预期的热量损失和等距缩放显着不同,并证实了以下假设:卵的结构支撑和孵化亲本是驱动巢设计的主要因素。

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