Abstract
Purpose: Thoracic aortic dissection (TAD) is considered one of the most catastrophic and non-traumatic cardiovascular diseases associated with high morbidity and mortality rates in clinical treatment. The purpose of this paper is to investigate the pulsatile hemodynamics changes throughout a cardiac cycle in a Stanford Type B TAD model with the aid of computational fluid dynamics (CFD) method. Methods: A patient-specific dissected aorta geometry was reconstructed from the three-dimensional (3D) computed tomography angiography (CTA) scanning. The realistic time-dependent pulsatile boundary conditions were prescribed for our 3D patient-specific TAD model. Blood was considered to be an incompressible, Newtonian fluid. The aortic wall was assumed to be rigid, and a no-slip boundary condition was applied at the wall. CFD simulations were processed using the finite volume (FV) method to investigate the pulsatile hemodynamics in terms of blood flow velocity, aortic wall pressure, wall shear stress and flow vorticity. In the experiments, blood velocity, pressure, wall shear stress and vorticity distributions were analyzed qualitatively and quantitatively. Results: The experimental results demonstrated a high wall shear stress and strong vertical flow at dissection initiation. The results also indicated that wall shear progressed along the false lumen, which is a possible cause of blood flow between aortic wall layers. Conclusions: The CFD simulations presented in this study may provide complementary information to assist clinicians for better understanding of the pulsatile hemodynamics and show a development potential towards the practical application of CFD method as a diagnostic tool for patients with TAD in the future.
| Original language | English |
|---|---|
| Pages (from-to) | 233-245 |
| Number of pages | 13 |
| Journal | Journal of X-Ray Science and Technology |
| Volume | 25 |
| Issue number | 2 |
| DOIs | |
| State | Published - 2017 |
| Externally published | Yes |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
-
SDG 3 Good Health and Well-being
Keywords
- Computational fluid dynamics
- computed tomography angiography
- patient-specific simulation
- pulsatile hemodynamics
- thoracic aortic dissection
Fingerprint
Dive into the research topics of 'Pulsatile hemodynamics in patient-specific thoracic aortic dissection models constructed from computed tomography angiography'. Together they form a unique fingerprint.Cite this
- APA
- Author
- BIBTEX
- Harvard
- Standard
- RIS
- Vancouver