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Numerical simulation of a self-propelled fish-like swimmer with rigid and flexible caudal fins

机译:用刚性和柔性尾鳍自推进鱼类游泳运动员的数值模拟

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Aim: In tils paper, numerical simulations were conducted to investigate the swimming performances, hydrodynani performances and wake structures of a self-propelled swimmer with rigid and flexible caudal fins.Methodology: The kinematics model of the swimmer was constructed using thunniform swimming. Using computational fluid dynamics (CFD) method, the systematic study of swimmer with rigid and flexible caudal fins was carried out.Results: The results showed that the caudal fin flexibility is beneficial to the fast-start of fish but not conducive to the fast cruising of fish. The fish with rigid caudal fin has larger cruising velocity inquasi-steady swimming and smaller forward acceleration in fast-start stage. In addition, the caudal fin flexibility is also beneficial to the heading stability of fish's self-propelled swimming. The pressure distribution on the fish surface indicates that most of the thrust is generated by the leading-edge region of the caudal fin. The visualization of wake structures showed the existence of the attached leading-edge vortex (LEV) in thunniform swimming.Interpretation: Based on the present simulations, the hydrodynamic performance of tuna during self-propelled swimming was analyzed in detail. Researchers can use these findings to design bionic robot fish with rigid and flexible tails.
机译:目的:在TILS纸中,进行了数值模拟,以研究具有刚性和灵活的尾鳍自推进游泳运动员的游泳演出,潮流性演奏和唤醒结构。方法:使用Thunniform游泳构建了游泳运动员的运动学模型。使用计算流体动力学(CFD)方法,进行了刚性和柔性尾鳍的游泳运动员的系统研究。结果表明,尾鳍灵活性有利于鱼的快速开始,但不利于快速巡航鱼。具有刚性尾鳍的鱼在快速开始阶段具有较大的巡航速度诊断游泳和较小的前进加速。此外,尾鳍灵活性也有利于鱼类自推进游泳的稳定性。鱼表面上的压力分布表明大部分推力由尾鳍的前缘区域产生。 Wake结构的可视化显示出存在于Thunniform游泳中的附着前缘涡旋(LEV)。分析了基于本发明的模拟,详细分析了自推进游泳期间金枪鱼的流体动力学性能。研究人员可以使用这些调查结果设计刚性和灵活的尾部的仿生机器人鱼。

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