狭窄病变动脉血流模拟研究进展。

G Shankar, Dharmendra Tripathi, P Deepalakshmi, O Anwar Bég, Sireetorn Kuharat, E P Siva
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引用次数: 0

摘要

心脏病可导致中风和心脏病发作,由于体内血液流动中断,影响着世界各地的许多人。这种血流动力学紊乱的一个常见的潜在原因是动脉收缩,即狭窄,这可归因于一系列原因,包括动脉粥样硬化或斑块积聚。许多理论和计算研究已经在这一领域提出,为实验(临床)研究提供了有益的补充。这些研究通过提供与心血管疾病相关的复杂流体动力学的见解和确定减轻此类疾病的可靠方法,使临床实践受益。因此,本综述旨在概述最近在理解狭窄动脉血流方面的数学和数值模拟进展,这些进展有助于扩大目前对患者疾病发病和缓解的理解。狭窄血流动力学的许多不同方面已经在各种假设下的大量文献中得到解决,例如不同的流体材料模型,动脉通道特性以及各种分析和数值解决技术。这些研究还考虑了实际临床治疗中的各种多物理效应,包括传热、质量扩散、纳米颗粒效应。在这篇综述中,我们对来自知名期刊的100多篇近期文章进行了评价。这篇综述的主要目的是强调用于建模、数值模拟和动脉血流动力学特性稳健评估的方法,这些方法为与疾病相关的血流动力学和可能的缓解策略提供了更复杂的见解。表格格式概述了2015-2025年期间研究的几何形状和血液行为(流体)的不同方面。这种有组织的介绍和主要贡献的结晶在一篇文章中也将作为多学科研究人员的宝贵资源,包括数学家、生物工程师、计算机科学家和医学研究人员。还概述了未来的发展路径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Review on Blood Flow Simulation in Stenotically Diseased Arteries.

Heart diseases which can lead to stroke and heart attacks, affect numerous individuals worldwide due to disruptions in blood flow within the body. A common underlying cause for such hemodynamic disorders is a constriction in the artery, which is known as a stenosis, which is attributable to a range of causes including atherosclerosis or plaque accumulation. Many theoretical and computational studies have been presented in this area providing a useful compliment to experimental (clinical) studies. These studies have benefited clinical practice by providing insights into complex fluid dynamics associated with cardiovascular disease and identifying robust methodologies for mitigating such diseases. This review therefore aims to provide an overview of recent mathematical and numerical modelling advancements in understanding blood flow in stenosed arteries which have served to expand the current understanding of disease onset and mitigation for patients. Many diverse aspects of stenotic hemodynamics have been addressed in a large body of literature under various assumptions, such as different fluid material models, artery channel characteristics and diverse analytical and numerical solution techniques. These studies have also considered a variety of multi-physical effects including heat transfer, mass diffusion, nanoparticle effects in actual clinical treatments. In this review, over 100 recent articles from reputable journals are appraised. The primary objectives of this review paper are to emphasize the methodologies used for modelling, numerical simulation, and robust evaluation of hemodynamic characteristics in arterial blood flow which provide a more sophisticated insight into hemodynamics associated with diseases and possible mitigation strategies. The tabular format outlines different aspects of geometries and blood behavior (fluids) examined in the period 2015-2025. This organized presentation and crystallization of key contributions in a single article will also serve as a valuable resource for multi-disciplinary researchers including mathematicians, bioengineers, computer scientists in addition to medical researchers. Future pathways are also outlined.

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