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首页> 外文期刊>Marine Technology Society journal >Shark Skin Separation Control Mechanisms
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Shark Skin Separation Control Mechanisms

机译:鲨鱼皮分离控制机制

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Drag reduction by marine organisms has undergone millions of years of natural selection, and from these organisms biomimetic studies can derive new technologies. The shortfin mako [Isurus oxyhnchus), considered to be one of the fastest and most agile marine predators, is known to have highly flexible scales on certain locations of its body. This scale flexibility is theorized to provide a passive, flow-actuated mechanism for controlling flow separation and thereby decreasing drag. Recent biological observations have found that the shortfin mako has highly flexible scales, bristling to angles in excess of 50°, particularly on the sides of the body downstream of the gills. High "contragility," which is explicitly defined here as the ability to change or move in a new or opposing direction while already in a turn, would occur if form drag were minimized. This would thus indicate the potential control of flow separation on body regions aft of the point of maximum girth or in regions of adverse pressure gradient. Thus results are consistent with the hypothesis that scale bristling controls flow separation. This scale flexibility appears to be a result of a reduction in the relative size of the base of the scales as well as a reorganization of the base shape as evidenced by histological examination of the skin and scales. Probable mechanisms leading to separation control are discussed.
机译:海洋生物减阻已经经历了数百万年的自然选择,仿生研究可从这些生物中衍生出新技术。短鳍ma(Isurus oxyhnchus)被认为是最快,最敏捷的海洋捕食者之一,据称在其身体的某些位置具有高度灵活的鳞片。从理论上讲,这种标度的灵活性可提供一种被动的,由流体驱动的机构,用于控制流体分离并从而减少阻力。最近的生物学观察发现,短鳍鲨鱼鳞具有很高的柔性鳞片,鬃毛的角度超过50°,尤其是在downstream下游的身体侧面。如果将表格阻力最小化,则会发生高“易变形性”,此处明确定义为在已经转弯的同时沿新的或相反方向改变或移动的能力。因此,这将指示在最大周长点之后的身体区域或逆压力梯度区域中的流动分离的潜在控制。因此,结果与氧化皮刚度控制流分离的假设是一致的。这种鳞片的柔韧性似乎是鳞片基部的相对尺寸减小以及基部形状的重组的结果,如皮肤和鳞片的组织学检查所证明的。讨论了导致分离控制的可能机制。

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