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首页> 外文期刊>Journal of biomechanical engineering. >Numerical Analysis for Elucidation of Nonlinear Frictional Characteristics of a Deformed Erythrocyte Moving on a Plate in Medium Subject to Inclined Centrifugal Force
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Numerical Analysis for Elucidation of Nonlinear Frictional Characteristics of a Deformed Erythrocyte Moving on a Plate in Medium Subject to Inclined Centrifugal Force

机译:倾斜离心力作用下在平板上移动的变形红细胞非线性摩擦特性的数值分析

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Complex interactions between blood cells, plasma proteins, and glycocalyx in the endothelial surface layer are crucial in microcirculation. To obtain measurement data of such interactions, we have previously performed experiments using an inclined centrifuge microscope, which revealed that the nonlinear velocity-friction characteristics of erythrocytes moving on an endothelia-cultured glass plate in medium under inclined centrifugal force are much larger than those on plain or material-coated glass plates. The purpose of this study was to elucidate the nonlinear frictional characteristics of an erythrocyte on plain or material-coated glass plates as the basis to clarify the interaction between the erythrocyte and the endothelial cells. We propose a model in which steady motion of the cell is realized as an equilibrium state of the force and moment due to inclined centrifugal force and hydrodynamic flow force acting on the cell. Other electrochemical effects on the surfaces of the erythrocyte and the plate are ignored for the sake of simplicity. Numerical analysis was performed for a three-dimensional flow of a mixture of plasma and saline around a rigid erythrocyte model of an undeformed biconcave shape and a deformed shape with a concave top surface and a flat bottom surface. A variety of conditions for the concentration of plasma in a medium, the velocity of the cell, and the minimum gap width and the angle of attack of the cell from the plate, were examined to obtain the equilibrium states. A simple flat plate model based on the lubrication theory was also examined to elucidate the physical meaning of the model. The equilibrium angle of attack was obtained only for the deformed cell model and was represented as a power function of the minimum gap width. A simple flat plate model qualitatively explains the power function relation of the frictional characteristics, but it cannot explain the equilibrium relation, confirming the computational result that the deformation of the cell is necessary for the equilibrium. The frictional characteristics obtained from the present computation qualitatively agree with those of former experiments, showing the validity of the proposed model.
机译:内皮细胞表面层中血细胞,血浆蛋白和糖萼之间的复杂相互作用在微循环中至关重要。为了获得此类相互作用的测量数据,我们之前使用倾斜离心显微镜进行了实验,结果表明,在倾斜离心力下,内皮细胞培养玻璃板上的红细胞在倾斜离心力作用下移动时的非线性速度摩擦特性要大得多。普通或带涂层玻璃板。这项研究的目的是阐明平整的或涂覆材料的玻璃板上的红血球的非线性摩擦特性,以此为基础阐明红血球与内皮细胞之间的相互作用。我们提出了一个模型,在该模型中,由于倾斜离心力和作用在单元上的流体动力作用力,单元的稳定运动是力和力矩的平衡状态。为了简单起见,忽略了对红细胞和板表面的其他电化学作用。对血浆和盐水的混合物在未变形的双凹形状和变形形状的刚性红细胞模型周围的三维流动进行了数值分析,该形状具有凹的顶表面和平坦的底表面。检查了在培养基中的血浆浓度,池的速度以及池与板之间的最小间隙宽度和攻角的各种条件,以获得平衡状态。还研究了基于润滑理论的简单平板模型,以阐明模型的物理含义。仅针对变形的细胞模型获得了平衡的迎角,并表示为最小间隙宽度的幂函数。一个简单的平板模型定性地解释了摩擦特性的幂函数关系,但不能解释平衡关系,从而确认了计算结果表明,单元的变形是平衡所必需的。从本次计算获得的摩擦特性在质量上与以前的实验吻合,表明了所提模型的有效性。

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