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首页> 外文期刊>The Journal of Experimental Biology >Propulsive design principles in a multi-jet siphonophore
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Propulsive design principles in a multi-jet siphonophore

机译:多喷射虹吸脉的推进设计原理

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Coordination of multiple propulsors can provide performance benefits in swimming organisms. Siphonophores are marine colonial organisms that orchestrate the motion of multiple swimming zooids for effective swimming. However, the kinematics at the level of individual swimming zooids (nectophores) have not been examined in detail. We used high-speed, high-resolution microvideography and particle image velocimetry of the physonect siphonophore Nanomia bijuga to study the motion of the nectophores and the associated fluid motion during jetting and refilling. The integration of nectophore and velum kinematics allow for a high-speed (maximum similar to 1 m s(-1)), narrow (1-2 mm) jet and rapid refill, as well as a 1:1 ratio of jetting to refill time. Scaled to the 3 mm nectophore length, jet speeds reach >300 lengths s(-1). Overall swimming performance is enhanced by velocity gradients produced in the nectophore during refill, which lead to a high-pressure region that produces forward thrust. Generating thrust during both the jet and refill phases augments the distance traveled by 17% over theoretical animals, which generate thrust only during the jet phase. The details of velum kinematics and associated fluid mechanics elucidate how siphonophores effectively navigate three-dimensional space, and could be applied to exit flow parameters in multijet underwater vehicles.
机译:多个推进器的协调可以在游泳生物中提供性能益处。虹吸体是海洋殖民生物,可以协调多个游泳毒素的运动,以便有效地游泳。然而,尚未详细检查单个游泳毒素(Nectophes)水平的运动学。我们使用高速,高分辨率的微观微观术和粒子图像纳米米亚米亚米亚米亚米亚··毕格巴研究了射流和再灌装过程中的NEnctioChores和相关的流体运动的运动。 Nectophore和Velum运动学的集成允许高速(最大值与1ms(-1)),窄(1-2毫米)射流和快速填充,以及喷射以重新填充时间的1:1比例。缩放到3 mm Nectophore长度,喷射速度达到> 300长度S(-1)。通过NECTIGLER在REFILL期间生产的速度梯度增强了整体游泳性能,这导致产生前推力的高压区域。在射流和再填充阶段期间产生推力增强了在理论动物中增加了17%的距离,该动物仅在喷射相期间产生推力。 Velum运动学和相关流体力学的细节阐明了Siphonophore如何有效地导航三维空间,并且可以应用于在多jet水下车辆中的流量参数。

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