Computational hydrodynamics of capsules and biological cells

Computational hydrodynamics of capsules and biological cells
复制标题

胶囊和生物细胞的计算流体动力学

DOI:
--
复制
发表时间:
2010
期刊:
影响因子:
--
通讯作者:
C. Pozrikidis
C. Pozrikidis
中科院分区:
--
文献类型:
--
作者:
C. Pozrikidis

文献摘要

被引文献

相似文献

二维双凹胶囊的流动诱导变形。Pozrikidis介绍数学框架数值方法细胞形状和无量纲数胶囊变形在无限剪切流胶囊运动近壁讨论流动诱导变形的人工胶囊,D。Barthes-Biancer、J. Walter和A.- V. Salsac介绍膜力学流动中的胶囊动力学B样条投影耦合有限元和边界积分线性剪切流中的胶囊变形讨论多个相互作用的血细胞的高分辨率快速边界积分方法,Jonathan B。Freund和Hong Zhao介绍数学框架边界积分计算中的快速求和膜力学数值保真度模拟总结和展望用浸没边界格子Boltzmann方法模拟微观血液动力学和血液流变学,J. Zhang,P. C。约翰逊和A.S. Popel介绍格子玻尔兹曼方法浸没边界方法流体性质更新红细胞力学和聚集模型单个细胞和细胞群微血管中的细胞悬浮液流动总结和讨论胶囊、囊泡和血细胞的前沿跟踪方法,Prosenjit Bagchi引言数值方法简单剪切流中的胶囊变形胶囊拦截壁附近的胶囊运动通道中的悬浮流滚动红细胞的耗散粒子动力学建模,D. A. Fedosov,B。Caswell和G.E. Karniadakis介绍数学框架膜机械性能膜-溶剂界面条件数值和物理缩放膜力学膜流变学从扭转扭矩流式细胞术细胞变形在剪切流管流摘要模拟红细胞运动在微血管和分叉,T. W. Secomb引言单列红细胞运动的轴对称模型红细胞运动的二维模型简单剪切流中的坦克踩踏通道流通过发散分叉的运动多细胞的运动讨论血液中血小板的运输和受体介导的粘附的多尺度建模,N. A.莫迪和M.R. King导言数学框架剪切流中近壁扁球体的运动布朗运动形状和壁对流体动力学碰撞的影响近壁两个血小板的瞬时聚集结论和未来方向索引
Flow-Induced Deformation of Two-Dimensional Biconcave Capsules, C. Pozrikidis Introduction Mathematical framework Numerical method Cell shapes and dimensionless numbers Capsule deformation in infinite shear flow Capsule motion near a wall Discussion Flow-Induced Deformation of Artificial Capsules, D. Barthes-Biesel, J. Walter, and A.-V. Salsac Introduction Membrane mechanics Capsule dynamics in flow B-spline projection Coupling finite elements and boundary integrals Capsule deformation in linear shear flow Discussion A High-Resolution Fast Boundary-Integral Method for Multiple Interacting Blood Cells, Jonathan B. Freund and Hong Zhao Introduction Mathematical framework Fast summation in boundary-integral computations Membrane mechanics Numerical fidelity Simulations Summary and outlook Simulating Microscopic Hemodynamics and Hemorheology with the Immersed-Boundary Lattice-Boltzmann Method, J. Zhang, P. C. Johnson, and A.S. Popel Introduction The lattice-Boltzmann method The immersed-boundary method Fluid property updating Models of RBC mechanics and aggregation Single cells and groups of cells Cell suspension flow in microvessels Summary and discussion Front-Tracking Methods for Capsules, Vesicles, and Blood Cells, Prosenjit Bagchi Introduction Numerical method Capsule deformation in simple shear flow Capsule interception Capsule motion near a wall Suspension flow in a channel Rolling on an adhesive substrate Summary Dissipative Particle Dynamics Modeling of Red Blood Cells, D.A. Fedosov, B. Caswell, and G.E. Karniadakis Introduction Mathematical framework Membrane mechanical properties Membrane-solvent interfacial conditions Numerical and physical scaling Membrane mechanics Membrane rheology from twisting torque cytometry Cell deformation in shear flow Tube flow Summary Simulation of Red Blood Cell Motion in Microvessels and Bifurcations, T.W. Secomb Introduction Axisymmetric models for single-file RBC motion Two-dimensional models for RBC motion Tank-treading in simple shear flow Channel flow Motion through diverging bifurcations Motion of multiple cells Discussion Multiscale Modeling of Transport and Receptor-Mediated Adhesion of Platelets in the Bloodstream, N.A. Mody and M.R. King Introduction Mathematical framework Motion of an oblate spheroid near a wall in shear flow Brownian motion Shape and wall effects on hydrodynamic collision Transient aggregation of two platelets near a wall Conclusions and future directions Index