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气道分支处三维液体栓的分裂。

Splitting of a three-dimensional liquid plug at an airway bifurcation.

作者信息

Fujioka Hideki, Romanò Francesco, Muradoglu Metin, Grotberg James B

机构信息

Center for Computational Science, Tulane University, 6823 St. Charles Avenue, New Orleans, Louisiana 70118, USA.

Univ. Lille, CNRS, ONERA, Arts et Métiers Institute of Technology, Centrale Lille, UMR 9014-LMFL-Laboratoire de Mécanique des Fluides de Lille-Kampé de Fériet, F-59000 Lille, France.

出版信息

Phys Fluids (1994). 2022 Aug;34(8):081907. doi: 10.1063/5.0101662. Epub 2022 Aug 22.

Abstract

Employing the moving particles' semi-implicit (MPS) method, this study presents a numerical framework for solving the Navier-Stokes equations for the propagation and the split of a liquid plug through a three-dimensional air-filled bifurcating tube, where the inner surface is coated by a thin fluid film, and surface tension acts on the air-liquid interface. The detailed derivation of a modified MPS method to handle the air-liquid interface of liquid plugs is presented. When the front air-liquid interface of the plug splits at the bifurcation, the interface deforms quickly and causes large wall shear stress. We observe that the presence of a transverse gravitational force causes asymmetries in plug splitting, which becomes more pronounced as the capillary number decreases or the Bond number increases. We also observe that there exists a critical capillary number below which the plug does not split into two daughter tubes but propagates into the lower daughter tube only. In order to deliver the plug into the upper daughter tube, the driving pressure to push the plug is required to overcome the hydrostatic pressure due to gravity. These tendencies agree with our previous experimental and theoretical studies.

摘要

本研究采用移动粒子半隐式(MPS)方法,提出了一个数值框架,用于求解纳维-斯托克斯方程,以研究液塞在三维充气分支管中的传播和分裂,该分支管内表面涂有一层薄液膜,表面张力作用于气液界面。文中给出了用于处理液塞气液界面的改进MPS方法的详细推导。当液塞的前部气液界面在分支处分裂时,界面会迅速变形并产生较大的壁面剪应力。我们观察到,横向重力的存在会导致液塞分裂不对称,随着毛细管数减小或邦德数增加,这种不对称变得更加明显。我们还观察到存在一个临界毛细管数,低于该临界值时,液塞不会分裂成两个子管,而是仅向下部子管传播。为了将液塞输送到上部子管中,推动液塞所需的驱动压力需要克服重力产生的静水压力。这些趋势与我们之前的实验和理论研究一致。

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