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机械心脏瓣膜功能障碍的模拟及非牛顿血液模型方法

Simulation of Mechanical Heart Valve Dysfunction and the Non-Newtonian Blood Model Approach.

作者信息

Chen Aolin, Basri Adi Azriff Bin, Ismail Norzian Bin, Tamagawa Masaaki, Zhu Di, Ahmad Kamarul Arifin

机构信息

Faculty of Engineering, Universiti Putra Malaysia, Serdang, Selangor 43400, Malaysia.

Faculty of Medicine and Health Sciences, Universiti Putra Malaysia, Serdang, Selangor 43400, Malaysia.

出版信息

Appl Bionics Biomech. 2022 Apr 19;2022:9612296. doi: 10.1155/2022/9612296. eCollection 2022.

Abstract

The mechanical heart valve (MHV) is commonly used for the treatment of cardiovascular diseases. Nonphysiological hemodynamic in the MHV may cause hemolysis, platelet activation, and an increased risk of thromboembolism. Thromboembolism may cause severe complications and valve dysfunction. This paper thoroughly reviewed the simulation of physical quantities (velocity distribution, vortex formation, and shear stress) in healthy and dysfunctional MHV and reviewed the non-Newtonian blood flow characteristics in MHV. In the MHV numerical study, the dysfunction will affect the simulation results, increase the pressure gradient and shear stress, and change the blood flow patterns, increasing the risks of hemolysis and platelet activation. The blood flow passes downstream and has obvious recirculation and stagnation region with the increased dysfunction severity. Due to the complex structure of the MHV, the non-Newtonian shear-thinning viscosity blood characteristics become apparent in MHV simulations. The comparative study between Newtonian and non-Newtonian always shows the difference. The shear-thinning blood viscosity model is the basics to build the blood, also the blood exhibiting viscoelastic properties. More details are needed to establish a complete and more realistic simulation.

摘要

机械心脏瓣膜(MHV)常用于治疗心血管疾病。MHV中存在的非生理性血流动力学可能会导致溶血、血小板活化,并增加血栓栓塞的风险。血栓栓塞可能会引发严重并发症和瓣膜功能障碍。本文全面回顾了健康和功能失调的MHV中物理量(速度分布、涡旋形成和剪切应力)的模拟,并回顾了MHV中的非牛顿血流特性。在MHV数值研究中,功能失调会影响模拟结果,增加压力梯度和剪切应力,改变血流模式,增加溶血和血小板活化的风险。随着功能失调严重程度的增加,血流向下游流动时会出现明显的回流和停滞区域。由于MHV结构复杂,非牛顿剪切变稀粘性血液特性在MHV模拟中变得明显。牛顿流体和非牛顿流体之间的对比研究总是存在差异。剪切变稀血液粘度模型是构建血液的基础,也是表现出粘弹性特性的血液。需要更多细节来建立一个完整且更现实的模拟。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/42f9/9042627/23e8144e6430/ABB2022-9612296.001.jpg

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