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首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >Thermal substitution and aerobic efficiency: measuring and predicting effects of heat balance on endotherm diving energetics
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Thermal substitution and aerobic efficiency: measuring and predicting effects of heat balance on endotherm diving energetics

机译:热替代和有氧效率:测量和预测热量平衡对吸热潜水能量的影响

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摘要

For diving endotherms, modelling costs of locomotion as a function of prey dispersion requires estimates of the costs of diving to different depths. One approach is to estimate the physical costs of locomotion (P-mech) with biomechanical models and to convert those estimates to chemical energy needs by an aerobic efficiency (eta = P-mech/Vo(2)) based on oxygen consumption (Vo(2)) in captive animals. Variations in h with temperature depend partly on thermal substitution, whereby heat from the inefficiency of exercising muscles or the heat increment of feeding (HIF) can substitute for thermogenesis. However, measurements of substitution have ranged from lack of detection to nearly complete use of exercise heat or HIF. This inconsistency may reflect (i) problems in methods of calculating substitution, (ii) confounding mechanisms of thermoregulatory control, or (iii) varying conditions that affect heat balance and allow substitution to be expressed. At present, understanding of how heat generation is regulated, and how heat is transported among tissues during exercise, digestion, thermal challenge and breath holding, is inadequate for predicting substitution and aerobic efficiencies without direct measurements for conditions of interest. Confirming that work rates during exercise are generally conserved, and identifying temperatures at those work rates below which shivering begins, may allow better prediction of aerobic efficiencies for ecological models.
机译:对于潜水吸热,将运动成本建模为猎物散布的函数,需要估算潜水至不同深度的成本。一种方法是使用生物力学模型来估算运动(P-mech)的物理成本,然后根据耗氧量(Vo()将有氧效率(eta = P-mech / Vo(2))转换为化学能需求。 2))在圈养动物中。 h随温度的变化部分取决于热替代,从而运动肌肉效率低下或进食热量增加(HIF)产生的热量可以替代生热作用。但是,替代的测量范围从缺乏检测到几乎完全使用运动热或HIF。这种不一致可能反映(i)计算替代方法中的问题,(ii)温度调节控制的混杂机制,或(iii)影响热平衡并允许表达替代的各种条件。目前,对于运动的产生,消化,热挑战和屏气过程中如何调节热量的产生以及如何在组织之间传递热量的了解不足以预测替代和有氧效率,而无需直接测量感兴趣的条件。确认运动过程中的工作率通常保持不变,并确定在这些工作率下开始发抖的温度,可以更好地预测生态模型的有氧效率。

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