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PMID: 39329656 Published · epublish English Journal Article

Computational Modeling Approach to Profile Hemodynamical Behavior in a Healthy Aorta.

Bioengineering (Basel, Switzerland) ·Vol. 11 ·No. 9 ·2024-09-12

Al-Jumaily AM, Al-Rawi M, Belkacemi D, Sascău RA, Stătescu C, Țurcanu FE, Anghel L

Abstract

Cardiovascular diseases (CVD) remain the leading cause of mortality among older adults. Early detection is critical as the prognosis for advanced-stage CVD is often poor. Consequently, non-invasive diagnostic tools that can assess hemodynamic function, particularly of the aorta, are essential. Computational fluid dynamics (CFD) has emerged as a promising method for simulating cardiovascular dynamics efficiently and cost-effectively, using increasingly accessible computational resources. This study developed a CFD model to assess the aorta geometry using tetrahedral and polyhedral meshes. A healthy aorta was modeled with mesh sizes ranging from 0.2 to 1 mm. Key hemodynamic parameters, including blood pressure waveform, pressure difference, wall shear stress (WSS), and associated wall parameters like relative residence time (RRT), oscillatory shear index (OSI), and endothelial cell activation potential (ECAP) were evaluated. The performance of the CFD simulations, focusing on accuracy and processing time, was assessed to determine clinical viability. The CFD model demonstrated clinically acceptable results, achieving over 95% accuracy while reducing simulation time by up to 54%. The entire simulation process, from image construction to the post-processing of results, was completed in under 120 min. Both mesh types (tetrahedral and polyhedral) provided reliable outputs for hemodynamic analysis. This study provides a novel demonstration of the impact of mesh type in obtaining accurate hemodynamic data, quickly and efficiently, using CFD simulations for non-invasive aortic assessments. The method is particularly beneficial for routine check-ups, offering improved diagnostics for populations with limited healthcare access or higher cardiovascular disease risk.

Keywords
computational fluid dynamics endothelial cell activation potential healthy aorta polyhedral mesh tetrahedral mesh
作者与单位
共 7 位作者,点击展开单位 / ORCID
Al-Jumaily Ahmed M ORCID
Institute of Biomedical Technologies, Auckland University of Technology, Auckland 1010, New Zealand.
Al-Rawi Mohammad ORCID
Center for Engineering and Industrial Design, Waikato Institute of Technology, Hamilton 3240, New Zealand. | Faculty of Engineering, Chemical and Materials Engineering, The University of Auckland, Auckland 1010, New Zealand.
Belkacemi Djelloul ORCID
Unité de Développement des Equipements Solaires, UDES, Centre de Développement des Energies Renouvelables, CDER, Tipaza 42004, Algeria.
Sascău Radu Andy
Internal Medicine Department, Grigore T. Popa University of Medicine and Pharmacy, 700503 Iași, Romania. | Cardiology Department, Cardiovascular Diseases Institute, Prof. Dr. George I.M. Georgescu, 700503 Iași, Romania.
Stătescu Cristian ORCID
Internal Medicine Department, Grigore T. Popa University of Medicine and Pharmacy, 700503 Iași, Romania. | Cardiology Department, Cardiovascular Diseases Institute, Prof. Dr. George I.M. Georgescu, 700503 Iași, Romania.
Țurcanu Florin-Emilian ORCID
Building Services Department, Faculty of Civil Engineering and Building Services, Gheorghe Asachi Technical University, 700050 Iaşi, Romania.
Anghel Larisa ORCID
Internal Medicine Department, Grigore T. Popa University of Medicine and Pharmacy, 700503 Iași, Romania. | Cardiology Department, Cardiovascular Diseases Institute, Prof. Dr. George I.M. Georgescu, 700503 Iași, Romania.
Article Info
Journal
Bioengineering (Basel, Switzerland)
Abbr.
Bioengineering (Basel)
ISSN
2306-5354
Published
2024-09-12
电子出版
2024-00-12
Language
English
Country/Region
Switzerland
NLM ID
101676056
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