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The morphological heterogeneity of cricket flow-sensing hairs conveys the complex flow signature of predator attacks

机译:flow流动感应毛的形态异质性传达了捕食者攻击的复杂流动特征

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摘要

Arthropod flow-sensing hair length ranges over more than an order of magnitude, from 0.1 to 5 mm. Previous studies repeatedly identified the longest hairs as the most sensitive, but recent studies identified the shortest hairs as the most responsive. We resolved this apparent conflict by proposing a new model, taking into account both the initial and long-term aspects of the flow pattern produced by a lunging predator. After the estimation of the mechanical parameters of hairs, we measured the flow produced by predator mimics and compared the predicted and observed values of hair displacements in this flow. Short and long hairs respond over different time scales during the course of an attack. By harbouring a canopy of hairs of different lengths, forming a continuum, the insect can fractionize these moments. Short hairs are more agile, but are less able to harvest energy from the air. This may result in longer hairs firing their neurons earlier, despite their slower deflection. The complex interplay between hair agility and sensitivity is also modulated by the predator distance and the attack speed, characteristics defining flow properties. We conclude that the morphological heterogeneity of the hair canopy mirrors the flow complexity of an entire attack, from launch to grasp.
机译:节肢动物流量感应头发的长度范围从0.1到5毫米不止一个数量级。以前的研究反复将最长的头发确定为最敏感,但最近的研究将最短的头发确定为最敏感。我们通过提出一种新模型解决了这种明显的冲突,同时考虑到了掠夺性捕食者产生的流动模式的初始和长期方面。在估计了头发的机械参数之后,我们测量了捕食者模拟物产生的流量,并比较了在该流量中头发位移的预测值和观察值。短发和长发在发作过程中的反应时间不同。通过掩藏不同长度的毛冠,形成一个连续体,昆虫可以将这些瞬间分散。短发更敏捷,但从空气中收集能量的能力较弱。尽管挠度变慢,这可能导致更长的头发更早地激发神经元。掠食者的距离和攻击速度也调节着头发敏捷性和敏感性之间的复杂相互作用,这些特征定义了流动特性。我们得出的结论是,冠层的形态异质性反映了从发射到抓紧的整个攻击过程的流程复杂性。

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