Oulaid Othmane, Zhang Junfeng
J Biomech Eng. 2015 Jun;137(6):061008. doi: 10.1115/1.4030055. Epub 2015 Apr 6.
Using a simplified two-dimensional divider-channel setup, we simulate the development process of red blood cell (RBC) flows in the entrance region of microvessels to study the wall shear stress (WSS) behaviors. Significant temporal and spatial variation in WSS is noticed. The maximum WSS magnitude and the strongest variation are observed at the channel inlet due to the close cell-wall contact. From the channel inlet, both the mean WSS and variation magnitude decrease, with a abrupt drop in the close vicinity near the inlet and then a slow relaxation over a relatively long distance; and a relative stable state with approximately constant mean and variation is established when the flow is well developed. The correlations between the WSS variation features and the cell free layer (CFL) structure are explored, and the effects of several hemodynamic parameters on the WSS variation are examined. In spite of the model limitations, the qualitative information revealed in this study could be useful for better understanding relevant processes and phenomena in the microcirculation.
我们使用简化的二维分隔通道设置,模拟红细胞(RBC)在微血管入口区域的流动发展过程,以研究壁面剪应力(WSS)行为。注意到WSS存在显著的时间和空间变化。由于细胞与壁紧密接触,在通道入口处观察到最大的WSS大小和最强的变化。从通道入口开始,平均WSS和变化幅度均减小,在入口附近有一个急剧下降,然后在相对较长的距离上缓慢松弛;当流动充分发展时,建立了具有近似恒定均值和变化的相对稳定状态。探索了WSS变化特征与无细胞层(CFL)结构之间的相关性,并研究了几个血液动力学参数对WSS变化的影响。尽管模型存在局限性,但本研究揭示的定性信息可能有助于更好地理解微循环中的相关过程和现象。