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首页> 外文期刊>Physica Scripta: An International Journal for Experimental and Theoretical Physics >A mathematical model of blood flow in a permeable channel: application to flat plate dialyzer
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A mathematical model of blood flow in a permeable channel: application to flat plate dialyzer

机译:渗透通道中血流的数学模型:平板透析器的应用

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This article presents the theoretical study of the physiological phenomenon brought up by filtration of a non-Newtonian Casson fluid between two parallel permeable membranes. This situation corresponds to blood filtration process in a flat plate hemodialyzer (FPH). Seepage of fluid across the membrane is considered in accordance with the Darcy's law and the equations of motion governing the flow are modeled. Using the low Reynolds number and long membrane length assumption, equations of motion are solved exactly. Equations describing velocity and pressure filed and various flow variables are derived and effects of wall slip parameter, wall filtration coefficient and the yield stress are presented graphically. A strong influence of these parameters is observed on the flow in an FPH. Theoretical values of the membrane filtration coefficient and mean pressure drop in an FPH are calculated and they are found to be in close agreement with the corresponding available empirical and experimental values in the literature. For certain limiting range of physical parameters, derived solutions reveal that the axial flow rate of Casson fluid in an FPH decays at an exponential rate. This is a physically valid and widely admitted result, used by several researchers in studying the blood filtration process in renal tubules of mammalian kidneys. Since the presented solutions in this article are reduced to their corresponding Newtonian fluid flow solutions between permeable membrane, therefore, it is concluded that a wide range of applications in physiology and engineering can be covered up by the present investigation.
机译:本文介绍了通过在两个平行渗透膜之间过滤的非牛顿腺体流体过滤的生理现象的理论研究。这种情况对应于平板血液透析器(FPH)中的血液过滤过程。根据Darcy的定律考虑膜穿过膜的渗透,并模拟控制流程的运动方程。使用低雷诺数和长膜长度假设,精确解决了运动方程。描述了描述速度和压力和各种流量变量的等式,并且壁滑参数,壁过滤系数和屈服应力的效果以图形方式呈现。在FPH中的流动上观察到这些参数的强烈影响。计算膜过滤系数的理论值和FPH中的平均压降,并且发现它们与文献中的相应的可用经验和实验值密切一致。对于某些限制的物理参数范围,衍生的解决方案显示以指数速率的FPH衰变的Casson流体的轴向流速。这是一种物理上有效和广泛承认的结果,由几个研究人员使用,用于研究哺乳动物肾脏肾小管中的血液过滤过程。由于本文中所呈现的液体在可渗透膜之间的相应牛顿流体流动溶液中,因此结论是,目前的调查可以弥补各种生理和工程中的应用。

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