冠状动脉狭窄建模和磁场影响下的血液动力学研究

IF 7 2区 医学 Q1 BIOLOGY Computers in biology and medicine Pub Date : 2024-11-25 DOI:10.1016/j.compbiomed.2024.109464
Chandra Shekhar Maurya, Abhijeet Kumar
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引用次数: 0

摘要

随着护理点诊断设备的兴起,研究动脉和微米级通道中的磁血流特性以用于生物医学的临床治疗变得越来越重要。我们进行了一项计算流体动力学(CFD)研究,以探索在磁场影响下受动脉壁附近椭圆形狭窄影响的冠状动脉内的血流情况。我们研究的新颖之处在于整合纳维-斯托克斯方程和麦克斯韦方程来计算流体流动的体力,同时在纵向和垂直方向上应用磁场,并使用 Carreau-Yasuda 模型来分析非牛顿血液流变学。考虑到层流和非牛顿特性,利用基于有限元的求解器 COMSOL Multiphysics,通过求解不可压缩的连续性和动量方程来模拟血流。该 CFD 模型利用之前公布的分析和计算数据进行了验证。本研究探讨了磁场对通过 25%、35% 和 50%狭窄动脉的血流的影响,研究了磁场及其方向如何影响速度曲线、压降和壁剪应力(WSS)的变化。我们的研究结果表明,磁场可以有效地操纵血流,根据磁场方向的不同造成加速或减速。我们观察到血液动力学发生了显著变化,尤其是在动脉狭窄程度达到 50% 时,这凸显了狭窄对血流特征的深远影响。与健康动脉相比,狭窄程度分别为 25%、35% 和 50%的动脉的速度变化分别增加了 16.5%、29.4% 和 62.1%。这些发现推进了磁场中血流的实验模型,突出了调节血流速度和压力的重要性。这些见解对于开发药物输送系统和磁驱动血泵特别有价值。
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Modelling of coronary artery stenosis and study of hemodynamic under the influence of magnetic fields
Investigating magnetic blood flow characteristics through arteries and micron-size channels for clinical therapies in biomedicine is becoming increasingly important with the rise of point-of-care diagnostics devices. A computational fluid dynamics (CFD) investigation is conducted to explore blood flow within a coronary artery affected by an elliptical stenosis near the artery wall under the influence of a magnetic field. The novelty of our study is the integration of Navier-Stokes and Maxwell's equations to calculate body forces on fluid flow, coupled with the application of magnetic fields both longitudinally and vertically, and the use of the Carreau-Yasuda model to analyse non-Newtonian blood rheology. Blood flow is modelled by solving the incompressible continuity and momentum equations, considering laminar and non-Newtonian properties, with the finite element-based solver COMSOL Multiphysics. The CFD model is validated using previously published analytical and computational data. This study investigates the effects of magnetic fields on blood flow through stenotic arteries with 25 %, 35 %, and 50 % stenosis, examining how the magnetic field and its orientation impact variations in velocity profiles, pressure drop, and wall shear stress (WSS). Our results show that magnetic fields can effectively manipulate blood flow, causing acceleration or deceleration depending on field direction. Significant changes in hemodynamics are observed, particularly at 50 % arterial stenosis, highlighting the profound impact of stenosis on flow characteristics. Compared to healthy arteries, the velocity change in stenosed arteries increased by 16.5 %, 29.4 %, and 62.1 % for 25 %, 35 %, and 50 % stenosis, respectively. The findings advance experimental models of blood flow in magnetic fields, highlighting the critical importance of regulating blood velocity and pressure. These insights are particularly valuable for developing drug delivery systems and magnetic-driven blood pumps.
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来源期刊
Computers in biology and medicine
Computers in biology and medicine 工程技术-工程:生物医学
CiteScore
11.70
自引率
10.40%
发文量
1086
审稿时长
74 days
期刊介绍: Computers in Biology and Medicine is an international forum for sharing groundbreaking advancements in the use of computers in bioscience and medicine. This journal serves as a medium for communicating essential research, instruction, ideas, and information regarding the rapidly evolving field of computer applications in these domains. By encouraging the exchange of knowledge, we aim to facilitate progress and innovation in the utilization of computers in biology and medicine.
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