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一种用于模拟可变形液体胶囊的浸入边界格子玻尔兹曼方法及其在微观血流中的应用。

An immersed boundary lattice Boltzmann approach to simulate deformable liquid capsules and its application to microscopic blood flows.

作者信息

Zhang Junfeng, Johnson Paul C, Popel Aleksander S

机构信息

School of Engineering, Laurentian University, Sudbury, ON P3E 2C6, Canada.

出版信息

Phys Biol. 2007 Nov 21;4(4):285-95. doi: 10.1088/1478-3975/4/4/005.

Abstract

In this paper, we develop an immersed boundary lattice Boltzmann approach to simulate deformable capsules in flows. The lattice Boltzmann method is utilized to solve the incompressible flow field over a regular Eulerian grid, while the immersed boundary method is employed to incorporate the fluid-membrane interaction with a Lagrangian representation of the capsule membrane. This algorithm was validated for the Laplace relationship, the dispersion relationship for interfacial waves and the drag coefficient for cylinders; excellent agreement with theoretical results was observed. Furthermore, simulations of single and multiple red blood cells in shear and channel flows were performed. Several characteristic hemodynamic and hemorheological features were successfully reproduced, including the tank-treading motions, cell migration from the vessel wall, slipper-shaped cell deformation, cell-free layers, blunt velocity profiles and the Fahraeus effect. These simulations therefore demonstrate the potential usefulness of this computational model for microscopic biofluidic systems. However, extension of this algorithm to three-dimensional situations is necessary for more realistic simulations.

摘要

在本文中,我们开发了一种浸入边界格子玻尔兹曼方法来模拟流动中的可变形胶囊。格子玻尔兹曼方法用于求解规则欧拉网格上的不可压缩流场,而浸入边界方法则用于将流体 - 膜相互作用与胶囊膜的拉格朗日表示相结合。该算法针对拉普拉斯关系、界面波的色散关系和圆柱体的阻力系数进行了验证;与理论结果观察到了极好的一致性。此外,还进行了剪切流和通道流中单个和多个红细胞的模拟。成功再现了几个特征性的血液动力学和血液流变学特征,包括坦克履带式运动、细胞从血管壁的迁移、拖鞋状细胞变形、无细胞层、钝性速度分布和法厄效应。因此,这些模拟证明了该计算模型在微观生物流体系统中的潜在有用性。然而,为了进行更真实的模拟,有必要将该算法扩展到三维情况。

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