假体置换术前后扩张胸主动脉模型的血流动力学

IF 2.2 3区 工程技术 Q2 MECHANICS Theoretical and Computational Fluid Dynamics Pub Date : 2023-05-09 DOI:10.1007/s00162-023-00651-4
Pier Giuseppe Ledda, Maria Grazia Badas, Gildo Matta, Giorgio Querzoli
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引用次数: 0

摘要

我们在一个扩张的胸主动脉模型中数值研究了血流动力学,并将其与假体置换术中上升部分的血流特征进行了比较。气流的特征是入口射流冲击主动脉壁并向主动脉弓扫去。跨阀射流产生的二次流向下游演化为螺旋流。在收缩期间,主动脉弓末端的小曲率半径导致降主动脉起始部分的血流分离和旋涡脱落。假体的植入决定了整体和局部血流模式的一些改变。由于几何和刚性的改变,主动脉脉波速度的增加导致血管内压力增大。扫射射流更沿轴向排列,沿主动脉弓传播更快。因此,观察到主动脉弓下游较强的血流分离。通过利用流形分析,我们确定了以近壁无序流动为特征的区域,这些区域可能呈现出强烈的生化物质浓度积累和下降。这些区域位于假体置换术的下游,在主动脉弓中,可能更容易出现新的血管扩张。
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Flow dynamics in a model of a dilated thoracic aorta prior to and following prosthetic replacement

We numerically investigate the flow dynamics in a model of a dilated thoracic aorta, and compare the flow features with the case of a prosthetic replacement in its ascending part. The flow is characterized by an inlet jet which impacts the aortic walls and sweeps toward the aortic arch. Secondary flows generated by the transvalvular jet evolve downstream into a helical flow. The small curvature radius at the end of the aortic arch induces flow separation and vortex shedding in the initial part of the descending aorta, during the systole. The implantation of a prosthesis determines several modifications in the global and local flow patterns. An increase of the pulse wave velocity in the aorta leads to larger pressures inside the vessel, due to the geometrical and rigidity modifications. The sweeping jet is more aligned along the axial direction and propagates faster along the aortic arch. Consequently, a stronger separation of the flow downstream of the aortic arch is observed. By also exploiting manifold analysis, we identify regions characterized by near-wall disordered flows which may present intense accumulation and drop of concentration of biochemicals. These regions are localized downstream of the prosthetic replacement, in the aortic arch, and may be more prone to a new emergence of vessel dilation.

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来源期刊
CiteScore
5.80
自引率
2.90%
发文量
38
审稿时长
>12 weeks
期刊介绍: Theoretical and Computational Fluid Dynamics provides a forum for the cross fertilization of ideas, tools and techniques across all disciplines in which fluid flow plays a role. The focus is on aspects of fluid dynamics where theory and computation are used to provide insights and data upon which solid physical understanding is revealed. We seek research papers, invited review articles, brief communications, letters and comments addressing flow phenomena of relevance to aeronautical, geophysical, environmental, material, mechanical and life sciences. Papers of a purely algorithmic, experimental or engineering application nature, and papers without significant new physical insights, are outside the scope of this journal. For computational work, authors are responsible for ensuring that any artifacts of discretization and/or implementation are sufficiently controlled such that the numerical results unambiguously support the conclusions drawn. Where appropriate, and to the extent possible, such papers should either include or reference supporting documentation in the form of verification and validation studies.
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