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首页> 外文期刊>The Journal of Experimental Biology >The numerical comparison of flow patterns and propulsive performances for the hydromedusae Sarsia tubulosa and Aequorea victoria
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The numerical comparison of flow patterns and propulsive performances for the hydromedusae Sarsia tubulosa and Aequorea victoria

机译:水母Sarsia tubulosa和Aequorea victoria的流动模式和推进性能的数值比较。

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The thrust-generating mechanism of a prolate hydromedusa Sarsia tubulosa and an oblate hydromedusa Aequorea victoria was investigated by solving the incompressible Navier-Stokes equations in the swirl-free cylindrical coordinates. The calculations clearly show the vortex dynamics related to the thrust-generating mechanism, which is very important for understanding the underlying propulsion mechanism. The calculations for the prolate jetting hydromedusa S. tubulosa indicate the formation of a single starting vortex ring for each pulse cycle with a relatively high vortex formation number. However, the calculations for the oblate jet-paddling hydromedusa A. victoria indicate shedding of the opposite-signed vortex rings very close to each other and the formation of large induced velocities along the line of interaction as the vortices move away from the hydromedusa in the wake. In addition to this jet propulsion mechanism, the hydromedusa's bell margin acts like a paddle and the highly flexible bell margin deforms in such a way that the low pressure leeward side of the bell margin has a projected area in the direction of motion. This thrust is particularly important during refilling of the subumbrella cavity where the stopping vortex causes significant pressure drag. The swimming performances based on our numerical simulations, such as swimming velocity, thrust, power requirement and efficiency, were computed and support the idea that jet propulsion is very effective for rapid body movement but is energetically costly and less efficient compared with the jet-paddling propulsion mechanism.
机译:通过求解无涡旋圆柱坐标系中不可压缩的Navier-Stokes方程,研究了长条形水medSarsia tubulosa和扁形水medAequorea victoria的推力产生机理。这些计算清楚地显示了与推力产生机理有关的涡旋动力学,这对于理解潜在的推进机理非常重要。扁长的喷射水med水母链球菌的计算表明,在每个脉冲周期中形成了一个具有较高涡旋数的单个起始涡旋环。然而,对扁圆的桨状水母水母A. victoria的计算表明,彼此相反的涡旋环的脱落非常接近,并且随着涡流从水母中的水母移开,沿相互作用线形成了较大的感应速度。唤醒。除了这种喷射推进机构以外,水母的钟形边缘还像桨一样起作用,并且高度柔性的钟形边缘以这样的方式变形,使得钟形边缘的低压背风侧在运动方向上具有投影面积。在重新填充伞下腔的过程中,此推力特别重要,在此处,停止涡旋会导致明显的压力拖曳。计算了基于我们数值模拟的游泳性能,例如游泳速度,推力,动力需求和效率,并支持以下观点:喷气推进对于快速的身体运动非常有效,但与喷气戏法相比,其能量成本高且效率低推进机制。

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