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通过计算建模对生物启发式涡旋交叉步过滤进行流体动力学分析。

Hydrodynamic analysis of bioinspired vortical cross-step filtration by computational modelling.

作者信息

Van Wassenbergh S, Sanderson S L

机构信息

Laboratory of Functional Morphology, Department of Biology, University of Antwerp, Universiteitsplein 1, 2610 Antwerpen, Belgium.

Department of Biology, William & Mary, 540 Landrum Drive, Williamsburg, VA 23187-8795, USA.

出版信息

R Soc Open Sci. 2023 May 10;10(5):230315. doi: 10.1098/rsos.230315. eCollection 2023 May.

Abstract

Research on the suspension-feeding apparatus of fishes has led recently to the identification of novel filtration mechanisms involving vortices. Structures inside fish mouths form a series of 'backward-facing steps' by protruding medially into the mouth cavity. In paddlefish and basking shark mouths, porous gill rakers lie inside 'slots' between the protruding branchial arches. Vortical flows inside the slots of physical models have been shown to be important for the filtration process, but the complex flow patterns have not been visualised fully. Here we resolve the three-dimensional hydrodynamics by computational fluid dynamics simulation of a simplified mouth cavity including realistic flow dynamics at the porous layer. We developed and validated a modelling protocol in ANSYS Fluent software that combines a porous media model and permeability direction vector mapping. We found that vortex shape and confinement to the medial side of the gill rakers result from flow resistance by the porous gill raker surfaces. Anteriorly directed vortical flow shears the porous layer in the centre of slots. Flow patterns also indicate that slot entrances should remain unblocked, except for the posterior-most slot. This new modelling approach will enable future design exploration of fish-inspired filters.

摘要

最近,对鱼类悬浮摄食器官的研究发现了涉及涡流的新型过滤机制。鱼嘴内部的结构通过向口腔内侧突出形成一系列“后向台阶”。在匙吻鲟和姥鲨的口中,多孔鳃耙位于突出鳃弓之间的“缝隙”内。物理模型缝隙内的涡流已被证明对过滤过程很重要,但复杂的流动模式尚未完全可视化。在这里,我们通过计算流体动力学模拟一个简化的口腔来解析三维流体动力学,该模拟包括多孔层处的实际流动动力学。我们在ANSYS Fluent软件中开发并验证了一个建模协议,该协议结合了多孔介质模型和渗透率方向矢量映射。我们发现,涡流形状以及对鳃耙内侧的限制是由多孔鳃耙表面的流动阻力导致的。向前的涡流在缝隙中心剪切多孔层。流动模式还表明,除了最靠后的缝隙外,缝隙入口应保持畅通。这种新的建模方法将有助于未来对受鱼类启发的过滤器进行设计探索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4ece/10170350/b4079ec38ce7/rsos230315f03.jpg

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