Study of Pulsatile Non-Newtonian Blood Flow Through Abdominal Aorta and Renal Arteries Incorporating Fluid- Structure Interaction

نویسندگان

  • A. R. Mehdizadeh Center for Research in Medical Physics and Engineering, School of Medicine, Shiraz University of Medical Science, Shiraz, Iran
  • A. Zare Department of Mechanical Engineering, Islamic Azad University, Shiraz Branch, Member of Young Researchers Club, Shiraz, Iran
  • E. Goshtasbi Rad School of Mechanical Engineering, Shiraz University, Shiraz, Iran
  • H. Emdad School of Mechanical Engineering, Shiraz University, Shiraz, Iran
  • M. B. Sharifkazemi Shiraz Medical School, Shiraz University of Medical Science, Shiraz, Iran
  • Z. Mortazavinia Department of Mechanical Engineering, ÉcolePolytechnique de Montréal, Montreal, Canada
چکیده مقاله:

Background: The interaction between the blood and the vessel wall is of great clinical interest in studying cardiovascular diseases, the major causes of death in developed countries.Objective: To understand the effects of incorporating fluid-structure interaction into the simulation of blood flow through an anatomically realistic model of abdominal aorta and renal arteries reconstructed from CT images.Methods: The fluid is assumed to be incompressible and non-Newtonian and the vessel wall is set to have isotropic elastic properties. The blood flow is assumed to be periodic; therefore, a real pulsatile flow velocity in the entrance of the abdominal aorta of a healthy adult is measured via laser Doppler anemometry and used in this study. The effects of wall flexibility, both rigid and compliant models were also simulated.Results: Comparison of the rigid model with compliant model reveals that velocity and pressure drop in flexible arteries is less than those in rigid arteries. As wall shear stress plays an important role in the function of the cardiovascular system as it has immediate effect on the endothelial histology, the wall shear stress was analyzed; the rigid model wall shear stress magnitude was higher than that in the compliant model. It was also observed that the peak values of wall shear stress in this study were not high enough to be able to damage and strip the endothelial cells. Displacements of vessel walls were also studied; it was found that the wall displacement during the systole was higher than the diastole.Conclusion: Incorporating fluid-structure interaction and considering vessel wall deformations in studying blood flow through arteries have notable effects on blood flow characteristics.

برای دانلود باید عضویت طلایی داشته باشید

برای دانلود متن کامل این مقاله و بیش از 32 میلیون مقاله دیگر ابتدا ثبت نام کنید

اگر عضو سایت هستید لطفا وارد حساب کاربری خود شوید

منابع مشابه

study of pulsatile non-newtonian blood flow through abdominal aorta and renal arteries incorporating fluid- structure interaction

background: the interaction between the blood and the vessel wall is of great clinical interest in studying cardiovascular diseases, the major causes of death in developed countries. objective: to understand the effects of incorporating fluid-structure interaction into the simulation of blood flow through an anatomically realistic model of abdominal aorta and renal arteries reconstructed from c...

متن کامل

Study of Pulsatile Non - Newtonian Blood Flow Through Abdominal Aorta and Renal Arteries Incorporating Fluid - Structure Interaction

Study of Pulsatile Non-Newtonian Blood Flow Through Abdominal Aorta and Renal Arteries Incorporating FluidStructure Interaction Mortazavinia Z.1, Goshtasbi Rad E.2, Emdad H.3, Sharifkazemi M. B.4, Zare A.5, Mehdizadeh A. R.*6 1Department of Mechanical Engineering, ÉcolePolytechnique de Montréal, Montreal, Canada 2School of Mechanical Engineering, Shiraz University, Shiraz, Iran 3School of Mecha...

متن کامل

Modeling of non-Newtonian Blood Flow through a Stenosed Artery Incorporating Fluid-Structure Interaction

This study investigated fluid and structural responses to pulsatile non-Newtonian blood flow through a stenosed artery, using ANSYS. The artery was modeled as an axis-symmetric stenosed vessel. The wall of the vessel was set to be isotropic and elastic. The blood behavior was described by the Power Law and Carreau non-Newtonian models, respectively. When compared to the Newtonian flow models, t...

متن کامل

Numerical Investigation of Angulation Effects in Stenosed Renal Arteries

Background: Numerical study of angulation effects of renal arteries on blood flow has been of great interest for many researchers.Objective: This paper aims at numerically determining the angulation effects of stenosed renal arteries on blood flow velocity and renal mass flow.Method: An anatomically realistic model of abdominal aorta and renal arteries is reconstructed from CT-scan images and u...

متن کامل

Newtonian and Non-Newtonian Blood Flow Simulation after Arterial Stenosis- Steady State and Pulsatile Approaches

Arterial stenosis, for example Atherosclerosis, is one of the most serious forms of arterial disease in the formation of which hemodynamic factors play a significant role. In the present study, a 3-D rigid carotid artery with axisymmetric stenosis with 75% reduction in cross-sectional area is considered. Laminar blood flow is assumed to have both Newtonian and non-Newtonian behavior (generalize...

متن کامل

Pulsatile Flow of Two-Fluid Nonlinear Models for Blood Flow through Catheterized Arteries: A Comparative Study

The pulsatile flow of blood through catheterized arteries is analyzed by treating the blood as a two-fluid model with the suspension of all the erythrocytes in the core region as a non-Newtonian fluid and the plasma in the peripheral layer as a Newtonian fluid. The non-Newtonian fluid in the core region of the artery is represented by i Casson fluid and ii Herschel-Bulkley fluid. The expression...

متن کامل

منابع من

با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید

ذخیره در منابع من قبلا به منابع من ذحیره شده

{@ msg_add @}


عنوان ژورنال

دوره 2  شماره 3

صفحات  -

تاریخ انتشار 2012-09-01

با دنبال کردن یک ژورنال هنگامی که شماره جدید این ژورنال منتشر می شود به شما از طریق ایمیل اطلاع داده می شود.

میزبانی شده توسط پلتفرم ابری doprax.com

copyright © 2015-2023