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Scaling of lunge feeding in rorqual whales: an integrated model of engulfment duration.

机译:不等鲸的弓箭饲养规模:吞噬持续时间的综合模型。

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Rorqual whales (Balaenopteridae) obtain their food by lunge feeding, a dynamic process that involves the intermittent engulfment and filtering of large amounts of water and prey. During a lunge, whales accelerate to high speed and open their mouth wide, thereby exposing a highly distensible buccal cavity to the flow and facilitating its inflation. Unsteady hydrodynamic models suggest that the muscles associated with the ventral groove blubber undergo eccentric contraction in order to stiffen and control the inflation of the buccal cavity; in doing so the engulfed water mass is accelerated forward as the whale's body slows down. Although the basic mechanics of lunge feeding are relatively well known, the scaling of this process remains poorly understood, particularly with regards to its duration (from mouth opening to closure). Here we formulate a new theory of engulfment time which integrates prey escape behavior with the mechanics of the whale's body, including lunge speed and acceleration, gape angle dynamics, and the controlled inflation of the buccal cavity. Given that the complex interaction between these factors must be highly coordinated in order to maximize engulfment volume, the proposed formulation rests on the scenario of Synchronized Engulfment, whereby the filling of the cavity (posterior to the temporomandibular joint) coincides with the moment of maximum gape. When formulated specifically for large rorquals feeding on krill, our analysis predicts that engulfment time increases with body size, but in amounts dictated by the specifics of krill escape and avoidance kinematics. The predictions generated by the model are corroborated by limited empirical data on a species-specific basis, particularly for humpback and blue whales chasing krill. A sensitivity analysis applied to all possible sized fin whales also suggests that engulfment duration and lunge speed will increase intra-specifically with body size under a wide range of predator-prey scenarios. This study provides the theoretical framework required to estimate the scaling of the mass-specific drag being generated during engulfment, as well as the energy expenditures incurred.
机译:不规则鲸鱼(Balaenopteridae)通过lung食来获取食物,这是一个动态过程,涉及间歇吞没和大量水和猎物的过滤。在冲刺过程中,鲸鱼以很高的速度加速并张大嘴巴,从而使高度可扩张的颊腔暴露于血流中并促进其膨胀。不稳定的流体力学模型表明,与腹沟肌脂有关的肌肉会发生偏心收缩,以加强和控制颊腔的膨胀。这样一来,吞噬的水团就会随着鲸鱼身体的减速而向前加速。尽管弓步喂食的基本机理是众所周知的,但对这一过程的规模仍知之甚少,特别是关于其持续时间(从张口到闭合)。在这里,我们提出了一种吞噬时间的新理论,该理论将猎物的逃逸行为与鲸鱼的身体力学相结合,包括弓步速度和加速度,间隙角动力学以及颊腔的受控膨胀。鉴于必须高度协调这些因素之间的复杂相互作用以最大程度地增加吞咽量,因此建议的配方基于同步吞噬的情况,即腔体(颞下颌关节后方)的充填与最大间隙瞬间吻合。当针对大型磷虾食用磷虾而专门制定时,我们的分析预测,吞噬时间会随着体型的增加而增加,但其数量取决于磷虾逃逸和回避运动学的具体情况。该模型生成的预测得到了基于特定物种的有限经验数据的证实,尤其是对于座头鲸和蓝鲸追逐磷虾。对所有可能大小的鲸鱼进行的敏感性分析还表明,在宽范围的捕食者-捕食者场景下,吞噬持续时间和弓步速度将随着体内大小而特别地增加。这项研究提供了估算吞噬过程中产生的特定质量阻力的规模以及所产生的能量消耗所需的理论框架。

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