金枪鱼向前游泳推进的流体力学和流动特性

Junshi Wang, H. Tran, Martha Christino, C. White, Joseph Zhu, G. Lauder, H. Bart-Smith, Haibo Dong
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引用次数: 6

摘要

采用实验与数值相结合的方法,研究了金枪鱼型水下航行器向前游动时的水动力性能和流动特性。通过立体录像技术获得了水下航行器体鳍系统的三维、随时间变化的运动学。然后根据实验数据直接重建高保真的计算模型。采用基于锐界面浸入边界法(IBM)的不可压缩流求解器进行流场计算。计算工作的主要目标是量化模型的推力性能。对船体的运动学和水动力特性进行了量化,并对尾流的动力学进行了分析。结果表明,尾鳍处有明显的前缘涡,尾迹处有独特的涡环结构。本文的研究结果有助于深入理解均匀游动的推力产生机制,并为提高游动式水下航行器的水动力性能提供潜在的建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hydrodynamics and Flow Characterization of Tuna-Inspired Propulsion in Forward Swimming
A combined experimental and numerical approach is employed to study the hydrodynamic performance and characterize the flow features of thunniform swimming by using a tuna-inspired underwater vehicle in forward swimming. The three-dimensional, time-dependent kinematics of the body-fin system of the underwater vehicle is obtained via a stereo-videographic technique. A high-fidelity computational model is then directly reconstructed based on the experimental data. A sharp-interface immersed-boundary-method (IBM) based incompressible flow solver is employed to compute the flow. The primary objective of the computational effort is to quantify the thrust performance of the model. The body kinematics and hydrodynamic performances are quantified and the dynamics of the vortex wake are analyzed. Results have shown significant leading-edge vortex at the caudal fin and unique vortex ring structures in the wake. The results from this work help to bring insight into understanding the thrust producing mechanism of thunniform swimming and to provide potential suggestions in improving the hydrodynamic performance of swimming underwater vehicles.
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