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PMID: 27567769 Published · ppublish English Journal Article

Laminar-to-turbulence and relaminarization zones detection by simulation of low Reynolds number turbulent blood flow in large stenosed arteries.

Bio-medical materials and engineering ·Vol. 27 ·No. 2-3 ·2016-08-12 ·页码 119-29

Tabe R, Ghalichi F, Hossainpour S, Ghasemzadeh K

Abstract

Laminar, turbulent, transitional, or combine areas of all three types of viscous flow can occur downstream of a stenosis depending upon the Reynolds number and constriction shape parameter. Neither laminar flow solver nor turbulent models for instance the k-ω (k-omega), k-ε (k-epsilon), RANS or LES are opportune for this type of flow. In the present study attention has been focused vigorously on the effect of the constriction in the flow field with a unique way. It means that the laminar solver was employed from entry up to the beginning of the turbulent shear flow. The turbulent model (k-ω SST Transitional Flows) was utilized from starting of turbulence to relaminarization zone while the laminar model was applied again with onset of the relaminarization district. Stenotic flows, with 50 and 75% cross-sectional area, were simulated at Reynolds numbers range from 500 to 2000 employing FLUENT (v6.3.17). The flow was considered to be steady, axisymmetric, and incompressible. Achieving results were reported as axial velocity, disturbance velocity, wall shear stress and the outcomes were compared with previously experimental and CFD computations. The analogy of axial velocity profiles shows that they are in acceptable compliance with the empirical data. As well as disturbance velocity and wall shear stresses anticipated by this new approach, part by part simulation, are reasonably valid with the acceptable experimental studies.

Keywords
Laminar-turbulent-relaminarization regimes new approach numerical analysis part by part simulation stenosis
MeSH 主题词
Arterial Occlusive Diseases/physiopathology Arteries/physiopathology Blood Flow Velocity Computer Simulation Constriction, Pathologic/physiopathology Humans Models, Cardiovascular Pulsatile Flow Stress, Mechanical
作者与单位
共 4 位作者,点击展开单位 / ORCID
Tabe Reza
Mechanical Engineering Faculty, Sahand University of Technology, Tabriz, Iran.
Ghalichi Farzan
Mechanical Engineering Faculty, Division of Biomechanics, Sahand University of Technology, Tabriz, Iran.
Hossainpour Siamak
Mechanical Engineering Faculty, Sahand University of Technology, Tabriz, Iran.
Ghasemzadeh Kamran
Chemical Engineering Faculty, Sahand University of Technology, Tabriz, Iran.
Article Info
Journal
Bio-medical materials and engineering
Abbr.
Biomed Mater Eng
ISSN
1878-3619
Published
2016-08-12
页码
119-29
Language
English
Country/Region
Netherlands
NLM ID
9104021
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