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The effects of a longfin inshore squid's fins on propulsive efficiency during underwater swimming

机译:长鳍近海鱿鱼鳍对水下游泳推进效率的影响

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摘要

Underwater transportation has always been attractive for human beings. Especially, the design of an underwater vehicle with high propulsive efficiency has become a passion for many researchers and engineers. While the design of such a vehicle has been discussed for a long time, an aquatic animal, namely a longfin inshore squid, has been exhibiting an incredible swimming performance under water for centuries. In this study, a longfin inshore doryteuthis pealeii squid was scanned using computer tomography (CT) to capture the details of the squid's geometrical appearance. In addition, a three-dimensional model of the squid has been built with computational fluid dynamics to understand the swimming technique of a squid. Propulsive efficiencies of squid models were calculated for 0, 4 and 8 angles of attack, funnel diameters of 0.25 cm, 0.5 cm and 1 cm and Reynolds numbers of 4.6E5, 1.0E6 and 1.6E6. A longfin inshore squid illustrated nearly 80% propulsive efficiency when the model had no fins at 0 angle of attack with 1 cm funnel diameter. Therefore, it was noted in this study that the use of larger funnel diameter, swimming with a smaller angle of attack and absence of fins provided better propulsive efficiency.
机译:水下运输一直对人类有吸引力。特别地,具有高推进效率的水下航行器的设计已经成为许多研究人员和工程师的热情。虽然这种车辆的设计已经讨论了很长时间,但是水生动物,即长鳍近海鱿鱼,已经在水下展现了令人难以置信的游泳性能。在这项研究中,使用计算机断层扫描(CT)扫描了长鳍近海杜鹃鱿鱼,以捕获鱿鱼的几何外观细节。另外,乌贼的三维模型已经建立了计算流体动力学,以了解乌贼的游泳技术。计算了鱿鱼模型在0、4和8迎角,漏斗直径0.25 cm,0.5 cm和1 cm的雷诺数为4.6E5、1.0E6和1.6E6时的推进效率。当该模型在0攻角且漏斗直径为1 cm时没有鳍片时,长鳍近海鱿鱼显示出近80%的推进效率。因此,在这项研究中指出,使用较大的漏斗直径,以较小的迎角游泳和不使用鳍片可提供更好的推进效率。

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