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首页> 外文期刊>The Journal of Experimental Biology >Aquatic wing flapping at low Reynolds numbers: swimming kinematics of the Antarctic pteropod, Clione antarctica
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Aquatic wing flapping at low Reynolds numbers: swimming kinematics of the Antarctic pteropod, Clione antarctica

机译:雷诺数低时的水翼拍动:南极翼足类动物,南极Clione的游泳运动学

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摘要

We studied swimming kinematics of the Antarctic pteropod, Clione antarctica, to investigate how propulsive forces are generated by flexible oscillating appendages operating at low Reynolds numbers (1025) exhibited gliding during the recovery phase of each half-stroke. Maximum translational and rotational accelerations of the body occurred at the initiation of each power phase, suggesting that rotational circulation, the acceleration reaction, and wake recapture may all potentially contribute to vertical force production. Individual contributions of these mechanisms cannot, however, be assessed from these kinematic data alone. During recovery phases of each half-stroke, C. antarctica minimized adverse drag forces by orienting the wings parallel to flow and by moving them along the body surface, possibly taking advantage of boundary layer effects. Vertical force production was altered through changes in the hydrodynamic angle of attack of the wing that augmented drag during the power phase of each half-stroke. At higher translational velocities of the body, the inclination of the power phase also became more nearly vertical. These results indicate that, in addition to serotonin-mediated modulation of wingbeat frequency reported previously in Clione, geometric alteration of wingbeat kinematics offers a precise means of controlling swimming forces.
机译:我们研究了南极翼足类动物Clione antarctica的游泳运动学,以研究在低雷诺数(10 25下工作)表现出滑行。身体的最大平移和旋转加速度发生在每个功率阶段的开始,这表明旋转循环,加速反作用和尾流捕捉都可能潜在地有助于产生垂直力。但是,不能仅从这些运动学数据评估这些机制的个体贡献。在每个半冲程的恢复阶段,南极梭菌通过使机翼平行于气流定向并沿着机体表面移动,从而最大限度地减小了不利的阻力,这可能是利用了边界层效应。通过在每个半冲程的动力阶段增加机翼阻力的机翼流体动力学迎角的变化来改变垂直力的产生。在身体更高的平移速度下,功率相的倾斜度也变得更接近垂直。这些结果表明,除了先前在Clione中报道的5-羟色胺介导的拍打频率调节外,拍打运动学的几何改变还提供了一种精确的控制游泳力的手段。

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