人体鼻腔纤维动力学的计算分析

Jiawei Ma, J. Tu, L. Tian, G. Ahmadi
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摘要

细长颗粒,如石棉和矿物纤维,被认为是严重的吸入危害,因为它们能够渗透到肺部深处。纤维颗粒的动态行为通常归因于其独特的针状几何形状。因此,了解吸入的细长颗粒与气流环境的相互作用具有重要意义。本文用数值方法研究了细长微纤维在真实人鼻腔内的传输和沉积过程。微纤维的运动是通过求解控制其耦合平移和旋转运动的方程组来求解的。控制方程包括阻力,用杰弗里模型评估的流体动力扭矩。在模拟中还考虑了剪切升力的影响。气道内气流采用无滑移壁面边界条件。由于气道表面覆盖着黏液,当纤维接触表面时,假定其沉积无反弹。该研究可以从平移、旋转、耦合以及旋转如何影响颗粒的宏观输运和沉积特性等方面仔细观察非球形颗粒流动动力学。对不同的超细纤维直径和长径比进行了一系列的仿真。将仿真结果与已有的实验数据进行了比较,得到了较早的计算模型预测结果和较好的一致性。本研究还试图为上呼吸道中微纤维的运输过程提供额外的见解。
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Computational Analysis of Fiber Dynamics in Human Nasal Cavity
Elongated particles, such as asbestos and mineral fibers, are considered severe inhalation hazards due to their ability to penetrate into the deep lung. Frequently the dynamic behavior of the fibrous particles is attributed to their unique needle-like geometry. Therefore, understanding the interactions of the inhaled elongated particles with the airflow environment is of great significance. In this study, the transport and deposition of elongated micro-fibers in a realistic human nasal cavity is investigated numerically. The motion of the micro-fiber is resolved by solving the system of equations governing its coupled translational and rotational motions. The governing equations included the drag, the hydrodynamic torques that were evaluated using the Jeffrey model. The influence of the shear lift force was also included in these simulations. The no-slip wall boundary condition for airflow in the airways was used. Since the surface of airways is covered with mucus, when a fiber touches the surface, it was assumed to be deposited with no rebound. The study allows a close look at the non-spherical particle-flow dynamics with respect to the translation, rotation, coupling, and how the rotation affects the particle’s macroscopic transport and deposition properties. A series of simulations for different microfiber diameters and aspect ratios were performed. The simulation results are compared with the existing experimental data, and earlier computational model predictions and good agreements were obtained. The present study also seeks to provide additional insight into the transport processes of microfibers in the upper respiratory tract.
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