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中空纤维中机械振动对血液动力学影响的计算建模

Computational modeling of effects of mechanical shaking on hemodynamics in hollow fibers.

作者信息

Kim Jeong Chul, Garzotto Francesco, Cruz Dinna N, Clementi Anna, Nalesso Federico, Kim Ji Hyun, Kang Eungtaek, Kim Hee Chan, Ronco Claudio

机构信息

Department of Nephrology, San Bortolo Hospital, Vicenza - Italy and International Renal Research Institute Vicenza (IRRIV), Vicenza - Italy and Institute of Medical and Biological Engineering, Medical Research Center, Seoul National University, Seoul - Korea.

出版信息

Int J Artif Organs. 2012 Apr 30;35(4):301-7. doi: 10.5301/ijao.5000094. Epub 2012 Apr 13.

Abstract

INTRODUCTION

Blood-membrane interaction during hemodialysis develops a secondary protein layer on the dialysis membrane surface, resulting in reduction of hemodialyzer performance. Wall shear stress at the surface of the hollow-fiber membrane is one of the determinant factors able to influence dialysis efficiency. Shaking of hemodialyzer during treatment could increase the wall shear stress of the membrane, which could enhance hemodialyzer performance.

METHODS

In this study, hemodynamic changes in hollow fibers were analyzed using computational fluid dynamics software for various shaking conditions of hemodialyzer (longitudinal, transverse, rotational motions).

RESULTS

Longitudinal motion induced reverse flow, while transverse motion induced symmetric swirling inside the hollow fiber. During rotational motions, nonuniform vortices were developed according to the rotational radius of the hollow fiber. These changes in flow pathlines induced by different shaking profiles increased the relative motion of blood, transmembrane pressure, and wall shear stress on dialysis membrane surfaces. Both longitudinal and transverse shaking profiles showed a linear relationship between shaking velocity (the product of amplitude and frequency) and wall shear stress.

CONCLUSION

Performance of hemodialyzer can be enhanced with simple mechanical shaking motions, and optimal shaking profiles for clinical application can be investigated and predicted with the computational fluid dynamics model proposed in this study.

摘要

引言

血液透析过程中的血液 - 膜相互作用会在透析膜表面形成一层次级蛋白质层,导致血液透析器性能下降。中空纤维膜表面的壁面剪应力是影响透析效率的决定性因素之一。治疗过程中对血液透析器进行摇晃可增加膜的壁面剪应力,从而提高血液透析器性能。

方法

在本研究中,使用计算流体动力学软件针对血液透析器的各种摇晃条件(纵向、横向、旋转运动)分析中空纤维内的血流动力学变化。

结果

纵向运动引起逆流,而横向运动引起中空纤维内部的对称涡旋。在旋转运动期间,根据中空纤维的旋转半径会形成不均匀的涡流。由不同摇晃模式引起的这些流线变化增加了血液的相对运动、跨膜压力以及透析膜表面的壁面剪应力。纵向和横向摇晃模式均显示摇晃速度(振幅与频率的乘积)与壁面剪应力之间呈线性关系。

结论

通过简单的机械摇晃运动可提高血液透析器的性能,并且利用本研究中提出的计算流体动力学模型可以研究和预测临床应用的最佳摇晃模式。

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