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首页> 外文期刊>The Journal of Experimental Biology >A hydrodynamic analysis of fish swimming speed: Wake structure and locomotor force in slow and fast labriform swimmers
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A hydrodynamic analysis of fish swimming speed: Wake structure and locomotor force in slow and fast labriform swimmers

机译:鱼游泳速度的水动力分析:慢速和快弯形游泳者的苏醒结构和运动力

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摘要

Past study of interspecific variation in the swimming speed of fishes has focused on internal physiological mechanisms that may limit the ability of locomotor muscle to generate power. In this paper, we approach the question of why some fishes are able to swim faster than others from a hydrodynamic perspective, using the technique of digital particle image velocimetry which allows measurement of fluid velocity and estimation of wake momentum and mechanical forces for locomotion. We investigate the structure and strength of the wake in three dimensions to determine how hydrodynamic force varies in two species that differ markedly in maximum swimming speed. Black surfperch (Embiotoca jacksoni) and bluegill sunfish (Lepomis macrochirus) swim at low speeds using their pectoral fins exclusively, and at higher speeds switch to combined pectoral and caudal fin locomotion. E, jacksoni can swim twice as fast as similarly sized L, macrochirus using the pectoral fins alone. The pectoral fin wake of black surfperch at all speeds consists of two distinct vortex rings linked ventrally. As speed increases from 1.0 to 3.0 L s(-1), where L is total body length, the vortex ring formed on the fin downstroke reorients to direct force increasingly downstream, parallel to the direction of locomotion. The ratio of laterally to downstream-directed force declines from 0.93 to 0.07 as speed increases. In contrast, the sunfish pectoral fin generates a single vortex ring per fin beat at low swimming speeds and a pair of linked vortex rings (with one ring only partially complete and attached to the body) at maximal labriform speeds. Across a biologically relevant range of swimming speeds, bluegill sunfish generate relatively large lateral forces with the paired fins: the ratio of lateral to downstream force remains at or above 1.0 at all speeds. By increasing wake momentum and by orienting this momentum in a direction more favorable for thrust than for lateral. force, black surfperch are able to swim at twice the speed of bluegill sunfish using the pectoral fins. In sunfish, without a reorientation of shed vortices, increases in power output of pectoral fin muscle would have little effect on maximum locomotor speed. We present two hypotheses relating locomotor stability, maneuverability and the structure of the vortex wake. First, at low speeds, the large lateral forces exhibited by both species may be necessary for stability. Second, we propose a potential hydrodynamic trade-off between speed and maneuverability that arises as a geometric consequence of the orientation of vortex rings shed by the pectoral fins. Bluegill sunfish may be more maneuverable because of their ability to generate large mediolateral force asymmetries between the left- and right-side fins. [References: 40]
机译:过去关于鱼类游泳速度的种间差异研究集中在内部生理机制上,这些机制可能会限制运动肌产生动力的能力。在本文中,我们使用数字粒子图像测速技术从流体力学的角度探讨了为什么某些鱼类的游泳速度比其他鱼类更快的问题,该技术可以测量流体速度并估算运动的尾流动量和机械力。我们在三个维度上研究了尾流的结构和强度,以确定在最大游泳速度上明显不同的两个物种中水动力如何变化。黑色冲浪者(Embiotoca jacksoni)和蓝g翻车鱼(Lepomis macrochirus)仅使用胸鳍低速游泳,并以较高的速度切换至胸鳍和尾鳍的组合运动。单独使用胸鳍,杰克逊犬的游泳速度是类似大小的长巨螯虾的两倍。黑色冲浪的胸鳍尾流在所有速度下都由两个不同的涡流环组成,它们在腹侧相连。当速度从1.0 L s(-1)增加到3.0 L s(-1)时(其中L是整个身体的长度),在鳍向下冲程上形成的涡流环会重新定向,以将越来越大的力引向下游,平行于运动方向。随着速度的增加,横向力与下游力之比从0.93降至0.07。相比之下,翻车鱼的胸鳍在低游泳速度下每个鳍节拍产生一个涡流环,并在最大唇形速度下产生一对相连的涡流环(其中一个环仅部分完成并附着在身体上)。在生物学上相关的游泳速度范围内,蓝ill翻车鱼通过成对的鳍产生较大的侧向力:在所有速度下,侧向力与下游力之比均保持在1.0或以上。通过增加尾流动量并使该动量的方向更适合于推力而不是横向。力,黑色的冲浪者可以使用胸鳍以两倍于蓝g翻车鱼的速度游泳。在翻车鱼中,如果不重新设计漩涡涡流,则胸鳍肌肉功率输出的增加对最大运动速度几乎没有影响。我们提出了两个关于运动稳定性,机动性和涡流尾流结构的假说。首先,在低速下,两个物种所表现出的较大的横向力可能对于稳定性是必要的。其次,我们提出了速度和可操纵性之间的潜在水动力折衷,这是由胸鳍脱落的涡流环定向的几何结果引起的。蓝g翻车鱼可能更具机动性,因为它们有能力在左右鳍之间产生较大的中外侧力不对称性。 [参考:40]

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