Numerical simulation of cellular blood flow in curved micro-vessels with saccular aneurysms: Effect of curvature degree and hematocrit level

Author:

Elhanafy Ahmed12ORCID,Elsagheer Samir34ORCID,Ookawara Shinichi5ORCID,Nada Sameh16ORCID

Affiliation:

1. Department of Energy Resources Engineering, Egypt-Japan University of Science and Technology (E-JUST) 1 , P.O. Box 179, New Borg El-Arab City, Postal Code 21934 Alexandria, Egypt

2. Mathematics and Engineering Physics Department, Faculty of Engineering, Mansoura University 2 , Mansoura 3551, Egypt

3. Computer Science and Information Technology Programs, Egypt-Japan University of Science and Technology (E-JUST) 3 , P.O. Box 179, New Borg El-Arab City, Postal Code 21934, Alexandria, Egypt

4. Faculty of Engineering, Aswan University 4 , Aswan 81528, Egypt

5. Department of Chemical Engineering, Graduate School of Science and Engineering, Tokyo Institute of Technology 5 , O-okayama, Meguro-ku, Tokyo 152-8552, Japan

6. Mechanical Engineering Department, Benha Faculty of Engineering, Benha University 6 , Benha, Qalubia 13512, Egypt

Abstract

The dynamics of cellular blood flow in curved vessels considerably differ from those in straight vessels. It is reported that clotting development is significantly affected by vessel shape irregularities. Thus, the current study aims to investigate the effect of curvature degree and hematocrit level on cellular blood flow in a curved micro-vessel with a saccular aneurysm. Accordingly, a three-dimensional numerical simulation is performed using a validated code developed for cellular blood flow problems. The obtained results show that the cell-free layer thickness is highly dependent on the curvature degree and hematocrit level, which may have a remarkable impact on the apparent viscosity of blood as well as the dynamics of other particles such as drug particulates. The near-wall region exhibits the highest degree of cell deformation, whereas the red blood cells within the aneurysm zone remain nearly undeformed. Meanwhile, the velocity of the red blood cells decreases with the increase in curvature degree, which can affect the quality of the oxygenation process. Because of the saccular aneurysm, a considerable decrease in plasma velocity is predicted. Moreover, no secondary flows are detected in the curved vessel except in the aneurysm zone. An increase in the curvature degree is expected to reduce the blood flow rate by about 10%. Furthermore, low wall shear stress values are predicted in the straight case compared to the values at the apex of the curved vessel, which may affect the structure and function of the endothelial cells of the vessel wall and, hence, increase the aneurysm rupture possibility.

Publisher

AIP Publishing

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