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首页> 外文期刊>Journal of Biomechanics >Analysis of non-Newtonian effects on Low-Density Lipoprotein accumulation in an artery
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Analysis of non-Newtonian effects on Low-Density Lipoprotein accumulation in an artery

机译:非牛顿对动脉中低密度脂蛋白积累的影响分析

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In this work, non-Newtonian effects on Low-Density Lipoprotein (LDL) transport across an artery are analyzed with a multi-layer model. Four rheological models (Carreau, Carreau-Yasuda, power-law and Newtonian) are used for the blood flow through the lumen. For the non-Newtonian cases, the arterial wall is modeled with a generalized momentum equation. Convection-diffusion equation is used for the LDL transport through the lumen, while Staverman-Kedem-Katchalslcy, combined with porous media equations, are used for the LDL transport through the wall. Results are presented in terms of filtration velocity, Wall Shear Stresses (WSS) and concentration profiles. It is shown that non-Newtonian effects on mass transport are negligible for a healthy intramural pressure value. Non-Newtonian effects increase slightly with intramural pressure, but Newtonian assumption can still be considered reliable. Effects of arterial size are also analyzed, showing that Newtonian assumption can be considered valid for both medium and large arteries, in predicting LDL deposition. Finally, non-Newtonian effects are also analyzed for an aorta-common iliac bifurcation, showing that Newtonian assumption is valid for mass transport at low Reynolds numbers. At a high Reynolds number, it has been shown that a non-Newtonian fluid model can have more impact due to the presence of flow recirculation. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在这项工作中,使用多层模型分析了非牛顿对低密度脂蛋白(LDL)跨动脉运输的影响。四种流变模型(Carreau,Carreau-Yasuda,幂律和牛顿)用于流过内腔的血液。对于非牛顿的情况,用广义动量方程对动脉壁进行建模。对流扩散方程用于通过腔的LDL传输,而Staverman-Kedem-Katchalslcy结合多孔介质方程,用于通过壁的LDL传输。结果以过滤速度,壁切应力(WSS)和浓度曲线表示。结果表明,对于健康的壁内压力值而言,非牛顿对质量传递的影响可以忽略不计。非牛顿效应随壁内压力而略有增加,但仍然可以认为牛顿假设是可靠的。还分析了动脉大小的影响,表明在预测LDL沉积时,牛顿假设可认为对大中动脉均有效。最后,还分析了非牛顿效应对主动脉-总叉的影响,表明牛顿假设对于低雷诺数下的物质传输是有效的。在高雷诺数下,已经表明,由于存在流动再循环,非牛顿流体模型会产生更大的影响。 (C)2016 Elsevier Ltd.保留所有权利。

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