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THE TRANSIENT DEFORMATION OF RED BLOOD CELLS IN SHEAR FLOW

机译:剪切流中红色血液细胞的瞬时变形

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摘要

The transient deformation of red blood cells (RBCs) in a shear flow is studied by a threedimensional numerical model proposed by the present authors. The RBCs are approximated by ghost cells consisting of Newtonian liquid drops enclosed by Skalak membranes. The RBCs have an initially biconcave discoid resting shape, and the internal liquid is assumed to be the same to the fluid outside. The simulation is based on a hybrid method, in which the immersed boundary concept is introduced into the framework of the lattice Boltzmann method, and a finite element model is incorporated to obtain the forces acting on the nodes of the cell membrane which is discretized into flat triangular elements. The dynamic motion of RBCs is investigated in simple shear flow under a broad range of shear rates. At large shear rates, the present results show that the cells carry out a swinging motion, in which periodic inclination-oscillation and shape deformation superimpose on the membrane tank treading motion. With the shear rate decreasing, the swinging amplitude of the cell increases, and finally triggers a transition to tumbling motion.
机译:本文作者提出的三维数值模型研究了剪切流中红细胞的瞬时变形。 RBC通过由Skalak膜包裹的牛顿液滴组成的鬼细胞进行近似。 RBC具有最初的双凹盘状静止形状,并且假定内部液体与外部液体相同。该模拟基于混合方法,其中将浸入边界概念引入晶格玻尔兹曼方法的框架,并引入有限元模型以获取作用于离散化为平面的细胞膜节点上的力三角形元素。在广泛的剪切速率范围内,在简单剪切流中研究了RBC的动态运动。在大剪切速率下,目前的结果表明,单元进行摇摆运动,其中周期性的倾斜振动和形状变形叠加在膜罐踩踏运动上。随着剪切速率的减小,单元的摆动幅度增大,并最终触发过渡运动。

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