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Computational fluid dynamics in the upper airway: comparison between different models and experimental data for a simplified geometry with major obstruction

机译:上呼吸道的计算流体动力学:比较模型和实验数据以简化具有主要障碍的几何形状

摘要

The present study aims at comparing different computational models used for simulating the fluid-structure interaction within an in-vitro setup resembling simplified major obstruction of pharyngeal airway. Due to the nature of the problem, i.e. air flow passing over a deformable latex surface, a fully coupled fluid-structure interaction algorithm is used. A comparison is made between two finite element models for the solid domain, one using shell and the other using volume elements. The material properties of these models follow a hyperelastic behavior. For the fluid part, laminar and various turbulence models such as standard k-epsilon, Shear Stress Transport, SSG Reynolds Stress and BSL Reynolds Stress are compared. We evaluate the efficiency of the models and how close to the experimental data are their results. The predictions of the structural model containing volume elements showed better consistency with the experimental data. In addition, the results obtained with the standard k-epsilon turbulence model were the least deviated among all turbulence models.
机译:本研究旨在比较不同的计算模型,这些模型用于模拟类似于简化的咽道严重阻塞的体外设置中的流体-结构相互作用。由于问题的性质,即气流经过可变形的乳胶表面,因此使用了完全耦合的流固耦合算法。在两个用于实体域的有限元模型之间进行了比较,一个使用壳,另一个使用体积元素。这些模型的材料特性遵循超弹性行为。对于流体部分,比较了层流模型和各种湍流模型,例如标准k-ε,剪切应力传递,SSG雷诺应力和BSL雷诺应力。我们评估模型的效率以及它们的结果与实验数据的接近程度。包含体积元素的结构模型的预测显示与实验数据更好的一致性。此外,在所有湍流模型中,使用标准kε湍流模型获得的结果偏差最少。

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