A parametric model for studying the aorta hemodynamics by means of the computational fluid dynamics
Resumen: Perturbed aorta hemodynamics, as for the carotid and the coronary artery, has been identified as potential predicting factor for cardiovascular diseases. In this study, we propose a parametric study based on the computational fluid dynamics with the aim of providing information regarding aortic disease. In particular, the blood flow inside a parametrized aortic arch is computed as a function of morphological changes of baseline aorta geometry. Flow patterns, wall shear stress, time average wall shear stress and oscillatory shear index were calculated during the cardiac cycle. The influence of geometrical changes on the hemodynamics and on these variables was evaluated. The results suggest that the distance between inflow and aortic arch and the angle between aortic arch and descending trunk are the most influencing parameters regarding the WSS-related indices while the effect of the inlet diameter seems limited. In particular, an increase of the aforementioned distance produces a reduction of the spatial distribution of the higher values of the time average wall shear stress and of the oscillatory shear index independently on the other two parameters while an increase of the angle produce an opposite effect. Moreover, as expected, the analysis of the wall shear stress descriptors suggests that the inlet diameter influences only the flow intensity. As conclusion, the proposed parametric study can be used to evaluate the aorta hemodynamics and could be also applied in the future, for analyzing pathological cases and virtual situations, such as pre- and/or post-operative cardiovascular surgical states that present enhanced changes in the aorta morphology yet promoting important variations on the considered indexes.
Idioma: Inglés
DOI: 10.1016/j.jbiomech.2020.109691
Año: 2020
Publicado en: Journal of Biomechanics 103 (2020), 109691 [12 pp.]
ISSN: 0021-9290

Factor impacto JCR: 2.712 (2020)
Categ. JCR: ENGINEERING, BIOMEDICAL rank: 57 / 89 = 0.64 (2020) - Q3 - T2
Categ. JCR: BIOPHYSICS rank: 43 / 71 = 0.606 (2020) - Q3 - T2

Factor impacto SCIMAGO: 0.825 - Biomedical Engineering (Q1) - Biophysics (Q1) - Sports Science (Q1) - Rehabilitation (Q1) - Orthopedics and Sports Medicine (Q1)

Tipo y forma: Article (PostPrint)
Área (Departamento): Área Mec.Med.Cont. y Teor.Est. (Dpto. Ingeniería Mecánica)

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Este artículo se encuentra en las siguientes colecciones:
Articles > Artículos por área > Mec. de Medios Contínuos y Teor. de Estructuras



 Record created 2025-02-10, last modified 2025-10-17


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