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Large-Amplitude Intermittent Swimming in Viscous and Inviscid Flows

机译:粘性和无粘性流动的大幅度间歇游泳

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摘要

Recently, it was demonstrated in an inviscid flow that burst-and-coast or intermittent swimming can save energy when compared with continuous swimming and that the energy savings are maximized for large-amplitude pitching motions where flow separation is likely to occur. This paper examines the effects of flow separation on altering inviscid flow predictions. As such, viscous and inviscid flow simulations are presented of a hydrofoil pitching intermittently with large-amplitude motions. It is observed that leading-edge vortex formation and shedding in a viscous flow significantly alter the wake dynamics from the inviscid flow solutions where only trailing-edge shedding is modeled. Moreover, the inviscid flow solutions predict higher peak force production, lower cost of transport, and lower optimal duty cycles than the viscous flow solutions. Despite these differences, the trends in the force production and energetics seen in a viscous flow are well captured by the inviscid flow simulations. Importantly, both predict energy savings on the order of 10-30% for intermittent swimming, and the energy savings increase when the amplitude of motion is increased even when significant leading-edge separation occurs.
机译:近来,在无粘性的流动中证明,与连续游泳相比,连发和连续游泳或间歇游泳可以节省能量,并且对于可能发生流分离的大振幅俯仰运动,该能量节省被最大化。本文研究了分流对改变无粘性流量预测的影响。这样,就以大幅度运动间歇性地俯仰了水翼,给出了粘性和无粘性的流动模拟。可以观察到,粘性流中的前沿涡流形成和脱落会显着改变无粘性流解决方案的尾流动力学,在粘性流解决方案中仅对后缘脱落进行建模。此外,与粘性流动解决方案相比,无粘性流动解决方案预测会产生更高的峰值力,降低运输成本,并降低最佳占空比。尽管存在这些差异,但在粘性流中看到的力产生和能量的趋势可以通过无粘性流仿真很好地捕获。重要的是,两者都预测间歇游泳的能量节省约为10-30%,并且即使运动幅度增大,即使发生明显的前沿分离,能量节省也会增加。

著录项

  • 来源
    《AIAA Journal》 |2019年第9期|3678-3685|共8页
  • 作者单位

    Lehigh Univ Dept Mech Engn & Mech Bethlehem PA 18015 USA;

    Univ Virginia Dept Mech & Aerosp Engn Charlottesville VA 22904 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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