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Influence of airflow dynamics on vortices in the human nasal cavity

机译:气流动力学对人鼻腔涡流的影响

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Purpose The purpose of this paper is to understand the effect of airflow dynamics on vortices for different flow rates using the human nose three-dimensional model.Design/methodology/approach Olfaction originates with air particles travelling from an external environment to the upper segment of the human nose. This phenomenon is generally understood by using the nasal airflow dynamics, which enhances the olfaction by creating the vortices in the human nose. An anatomical three-dimensional model of the human nasal cavity from computed tomography (CT) scan images using the MIMICS software (Materialise, USA) was developed in this study. Grid independence test was performed through volume flow rate, pressure drop from nostrils and septum and average velocity near the nasal valve region using a four computational mesh model. Computational fluid dynamics (CFD) was used to examine the flow pattern and influence of airflow dynamics on vortices in the nasal cavity. Numerical simulations were conducted for the flow rates of 7.5, 10, 15 and 20L/min using numerical finite volume methods.Findings At coronal cross-sections, dissimilar nasal airflow patterns were observed for 7.5, 10, 15 and 20L/min rate of fluid flow in the human nasal cavity. Vortices that are found at the boundaries with minimum velocity creates deceleration zone in the nose vestibule region, which is accompanied by flow segregation. Maximum vortices were observed in the nasal valve region and the posterior end of the turbinate region, which involves mixing and recirculation and is responsible for enhancing the smelling process.Practical implications The proposed analysis is applicable to design the sensor chamber for electronic noses.Originality/value In this paper, the influence of airflow dynamics on vortices in the human nasal cavity is discussed through numerical simulations.
机译:目的本文的目的是使用人的鼻子三维模型了解气流动力学对不同流速的涡流的影响。设计/方法/方法嗅觉起源于空气颗粒从外部环境传播到空气的上部。人的鼻子。通常可以通过使用鼻气流动力学来理解这种现象,鼻动力学通过在人鼻中产生涡流来增强嗅觉。在这项研究中,使用MIMICS软件(美国材料公司)从计算机断层扫描(CT)扫描图像建立了人体鼻腔的三维解剖模型。通过使用四个计算网格模型,通过体积流量,来自鼻孔和隔垫的压降以及鼻瓣区域附近的平均速度进行网格独立性测试。计算流体动力学(CFD)用于检查流型以及气流动力学对鼻腔涡流的影响。使用数值有限体积法对7.5、10、15和20L / min的流速进行了数值模拟。发现在冠状横截面,观察到7.5、10、15和20L / min的液体的鼻腔气流模式不同在人的鼻腔中流动。以最小速度在边界处发现的涡流会在前庭区域形成减速区,并伴有流动分离。在鼻瓣区域和鼻甲区域的后端观察到最大涡旋,这涉及混合和再循环并有助于增强嗅觉过程。实际意义所提出的分析适用于设计电子鼻传感器腔室。数值本文通过数值模拟讨论了气流动力学对人鼻腔内涡流的影响。

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