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3D Flow in the Venom Channel of a Spitting Cobra: Do the Ridges in the Fangs Act as Fluid Guide Vanes?

机译:随地吐痰的眼镜蛇的毒液通道中的3D流动:尖牙中的脊是否充当流体引导叶片?

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摘要

The spitting cobra Naja pallida can eject its venom towards an offender from a distance of up to two meters. The aim of this study was to understand the mechanisms responsible for the relatively large distance covered by the venom jet although the venom channel is only of micro-scale. Therefore, we analysed factors that influence secondary flow and pressure drop in the venom channel, which include the physical-chemical properties of venom liquid and the morphology of the venom channel. The cobra venom showed shear-reducing properties and the venom channel had paired ridges that span from the last third of the channel to its distal end, terminating laterally and in close proximity to the discharge orifice. To analyze the functional significance of these ridges we generated a numerical and an experimental model of the venom channel. Computational fluid dynamics (CFD) and Particle-Image Velocimetry (PIV) revealed that the paired interior ridges shape the flow structure upstream of the sharp 90° bend at the distal end. The occurrence of secondary flow structures resembling Dean-type vortical structures in the venom channel can be observed, which induce additional pressure loss. Comparing a venom channel featuring ridges with an identical channel featuring no ridges, one can observe a reduction of pressure loss of about 30%. Therefore it is concluded that the function of the ridges is similar to guide vanes used by engineers to reduce pressure loss in curved flow channels.
机译:随地吐痰的眼镜蛇眼镜蛇(Naja pallida)可以将毒液从最多两米的距离向罪犯喷射。这项研究的目的是了解毒液射流所覆盖的相对较大距离的机制,尽管毒液通道仅是微尺度的。因此,我们分析了影响毒液通道中二次流量和压力下降的因素,包括毒液的物理化学性质和毒液通道的形态。眼镜蛇毒液显示出降低剪切的特性,并且毒液通道具有成对的脊,该脊从通道的最后三分之一延伸到其远端,在横向上终止于紧靠排放孔。为了分析这些脊的功能重要性,我们生成了毒液通道的数值模型和实验模型。计算流体动力学(CFD)和颗粒图像测速(PIV)显示,成对的内部脊在远端90°急剧弯曲的上游形成了流动结构。可以观察到在毒液通道中类似于迪安型涡旋结构的次级流动结构的出现,这引起了额外的压力损失。将具有脊的毒液通道与没有脊的相同通道进行比较,可以观察到压力损失减少了约30%。因此可以得出结论,脊的功能类似于工程师用来减少弯曲流道中压力损失的导向叶片。

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