A numerical study of tadpole swimming in the wake of a D-section cylinder

IF 3.4 3区 工程技术 Q1 MECHANICS 水动力学研究与进展:英文版 Pub Date : 2017-12-01 DOI:10.1016/S1001-6058(16)60818-1
Hao-tian Yuan (袁昊天), Wen-rong Hu (胡文蓉)
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引用次数: 9

Abstract

The vortex structure and the hydrodynamic performance of a tadpole undulating in the wake of a D-section cylinder are studied by solving the Navier-Stokes equations for the unsteady incompressible viscous flow. A dynamic mesh fitting the tadpole's deforming body surface is used in the simulation. It is found that three main factors can contribute to the thrust of the tadpole behind a D-cylinder: the backward jet in the wake, the local reverse flows on the tadpole surface and the suction force caused by the passing vortices. The tadpole's relative undulating frequency and the distance between the D-cylinder and the tadpole have a great influence on both the vortex structure and the hydrodynamic performance. At some undulating frequency, a tadpole may break or dodge vortices from the D-cylinder. When the vortices are broken, the tadpole can gain a great thrust but will consume much energy to maintain its undulation. When the vortices are dodged, the tadpole is subject to a small thrust or even a drag. However, it is an effective way to save much energy in the undulating swimming, as the Kármán gait does. As the tadpole is located behind the D-cylinder at different distances, three typical kinds of wake are observed. When an incomplete Kármán vortex street forms between the D-cylinder and the tadpole, the tadpole is subject to the highest thrust.

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蝌蚪在d形圆柱体尾迹中游动的数值研究
通过求解非定常不可压缩粘性流动的Navier-Stokes方程,研究了蝌蚪在d截面圆柱体尾迹中波动的涡结构和水动力性能。仿真中采用动态网格拟合蝌蚪变形体表。研究发现,影响d柱后蝌蚪推力的主要因素有三个:尾迹中的后向射流、蝌蚪表面的局部逆流动和通过涡所产生的吸力。蝌蚪的相对波动频率和d -圆柱体与蝌蚪之间的距离对涡结构和水动力性能都有很大的影响。在某种波动的频率下,蝌蚪可能会打破或躲避来自d柱的涡流。当涡旋被打破时,蝌蚪可以获得很大的推力,但要消耗大量的能量来维持它的波动。当涡旋被避开时,蝌蚪会受到一个小推力甚至阻力。然而,它是一种有效的方式,以节省大量的能量在波动游泳,如Kármán步态。由于蝌蚪位于d柱后面不同距离处,可以观察到三种典型的尾流。当一个不完整的Kármán涡旋街在d缸和蝌蚪之间形成时,蝌蚪受到最大的推力。
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CiteScore
5.90
自引率
0.00%
发文量
1240
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