A Fluid–Structure Interaction Analysis to Investigate the Influence of Magnetic Fields on Plaque Growth in Stenotic Bifurcated Arteries

Dynamics Pub Date : 2024-07-18 DOI:10.3390/dynamics4030030
Kaleem Iqbal, E. Rossi di Schio, M. A. Anwar, Mudassar Razzaq, Hasan Shahzad, P. Valdiserri, Giampietro Fabbri, C. Biserni
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引用次数: 0

Abstract

A finite element method is employed to examine the impact of a magnetic field on the development of plaque in an artery with stenotic bifurcation. Consistent with existing literature, blood flow is characterized as a Newtonian fluid that is stable, incompressible, biomagnetic, and laminar. Additionally, it is assumed that the arterial wall is linearly elastic throughout. The hemodynamic flow within a bifurcated artery, influenced by an asymmetric magnetic field, is described using the arbitrary Lagrangian–Eulerian (ALE) method. This technique incorporates the fluid–structure interaction coupling. The nonlinear system of partial differential equations is discretized using a stable P2P1 finite element pair. To solve the resulting nonlinear algebraic equation system, the Newton-Raphson method is employed. Magnetic fields are numerically modeled, and the resulting displacement, velocity magnitude, pressure, and wall shear stresses are analyzed across a range of Reynolds numbers (Re = 500, 1000, 1500, and 2000). The numerical analysis reveals that the presence of a magnetic field significantly impacts both the displacement magnitude and the flow velocity. In fact, introducing a magnetic field leads to reduced flow separation, an expanded recirculation area near the stenosis, as well as an increase in wall shear stress.
研究磁场对狭窄分叉动脉斑块生长影响的流体与结构相互作用分析
本文采用有限元方法研究磁场对狭窄分叉动脉斑块发展的影响。与现有文献一致,血流被描述为稳定、不可压缩、生物磁性和层流的牛顿流体。此外,假设动脉壁在整个过程中都是线性弹性的。受不对称磁场影响的分叉动脉内的血流动力学流动采用任意拉格朗日-欧勒(ALE)方法进行描述。该技术包含流体与结构的相互作用耦合。使用稳定的 P2P1 有限元对将非线性偏微分方程系统离散化。为了求解由此产生的非线性代数方程系统,采用了牛顿-拉斐森方法。对磁场进行了数值建模,并分析了在雷诺数(Re = 500、1000、1500 和 2000)范围内产生的位移、速度大小、压力和壁面剪应力。数值分析表明,磁场的存在对位移大小和流速都有显著影响。事实上,引入磁场会导致流动分离度降低、狭窄处附近的再循环面积扩大以及壁面剪切应力增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
1.20
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0.00%
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