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Numerical study of the impact of non-Newtonian blood behavior on flow over a two-dimensional backward facing step

机译:非牛顿血液行为对二维后向台阶上流动影响的数值研究

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Endothelial cell (EC) responsiveness to shear stress is essential for vasoregulation and plays a role in atherogenesis. Although blood is a non-Newtonian fluid, EC flow studies in vitro are typically performed using Newtonian fluids. The goal of the present study was to determine the impact of non-Newtonian behavior on the flow field within a model flow chamber capable of producing flow disturbance and whose dimensions permit Reynolds and Womersley numbers comparable to those present in vivo. We performed two-dimensional computational fluid dynamic simulations of steady and pulsatile laminar flow of Newtonian and non-Newtonian fluids over a backward facing step. In the non-Newtonian simulations, the fluid was modeled as a shear-thinning Carreau fluid. Steady flow results demonstrate that for Re in the range 50-400, the flow recirculation zone downstream of the step is 22-63% larger for the Newtonian fluid than for the non-Newtonian fluid, while spatial gradients of shear stress are larger for the non-Newtonian fluid. In pulsatile flow, the temporal gradients of shear stress within the flow recirculation zone are significantly larger for the Newtonian fluid than for the non-Newtonian fluid. These findings raise the possibility that in regions of flow disturbance, EC mechanotransduction pathways stimulated by Newtonian and non-Newtonian fluids may be different.
机译:内皮细胞(EC)对剪切应力的反应性对于血管调节至关重要,并在动脉粥样硬化中发挥作用。尽管血液是非牛顿流体,但体外EC流量研究通常是使用牛顿流体进行的。本研究的目的是确定非牛顿行为对模型流动室内流场的影响,该流动室内能够产生流动扰动,并且其尺寸允许雷诺数和沃默斯利数与体内存在的数值相当。我们进行了二维计算的流体动力学模拟,该过程在向后的一步上对牛顿流体和非牛顿流体进行了稳定的脉动层流。在非牛顿模拟中,将流体建模为剪切稀化的Carreau流体。稳定的流动结果表明,对于Re在50-400范围内,对于非牛顿流体,该步骤下游的回流区域比非牛顿流体大22-63%,而对于该应力,空间切变梯度更大。非牛顿流体。在脉动流中,对于牛顿流体,在流体再循环区内的剪切应力的时间梯度明显大于非牛顿流体。这些发现增加了在流动扰动区域中,由牛顿流体和非牛顿流体刺激的EC机械传导途径可能不同的可能性。

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