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首页> 外文期刊>Integrative and Comparative Biology >A Solution Strategy to Include the Opening of the Opercular Slits in Moving-Mesh CFD Models of Suction Feeding
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A Solution Strategy to Include the Opening of the Opercular Slits in Moving-Mesh CFD Models of Suction Feeding

机译:一种在吸入网的移动网CFD模型中包括开小孔的解决方案

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摘要

The gill cover of fish and pre-metamorphic salamanders has a key role in suction feeding by acting as a one-way valve. It initially closes and avoids an inflow of water through the gill slits, after which it opens to allow outflow of the water that was sucked through the mouth into the expanded buccopharyngeal cavity. However, due to the inability of analytical models (relying on the continuity principle) to calculate the flow of fluid through a cavity with two openings and that was changing in shape and size, stringent boundary conditions had to be used in previously developed mathematical models after the moment of the valve's opening. By solving additionally for the conservation of momentum, computational fluid dynamics (CFD) has the capacity to dynamically simulate these flows, but this technique also faces complications in modeling a transition from closed to open valves. Here, I present a relatively simple solution strategy to incorporate the opening of the valves, exemplified in an axisymmetrical model of a suction-feeding sunfish in ANSYS Fluent software. By controlling viscosity of a separately defined fluid entity in the region of the opercular cavity, early inflow can be blocked (high viscosity assigned) and later outflow can be allowed (changing viscosity to that of water). Finally, by analyzing the CFD solution obtained for the sunfish model, a few new insights into the biomechanics of suction feeding are gained.
机译:鱼和变态sal的cover盖通过用作单向阀在吸食中起关键作用。最初,它关闭并避免水通过s缝流入,然后打开,以允许通过嘴吸入的水流出到扩大的颊咽腔中。但是,由于分析模型(依赖于连续性原理)无法计算通过具有两个开口且形状和大小正在变化的空腔的流体流量,因此在之后开发的数学模型中必须使用严格的边界条件。阀门打开的瞬间。通过额外解决动量守恒问题,计算流体力学(CFD)可以动态模拟这些流量,但是该技术在建模从关闭阀到打开阀的转换过程中也面临着复杂性。在这里,我提出了一个相对简单的解决方案策略,以合并阀门的开度,以ANSYS Fluent软件中的吸食翻车鱼的轴对称模型为例。通过控制在手术腔区域中单独定义的流体实体的粘度,可以阻止早期流入(分配高粘度),然后允许以后流出(将粘度更改为水)。最后,通过分析为翻车鱼模型获得的CFD解决方案,获得了对吸食生物力学的一些新见解。

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