Rheological Behavior of Physiological Pulsatile Flow through a Model Arterial Stenosis with Moving Wall
Author(s) -
Sumaia Parveen Shupti,
Mir Golam Rabby,
Md. Mamun Molla
Publication year - 2015
Publication title -
journal of fluids
Language(s) - English
Resource type - Journals
eISSN - 2356-7376
pISSN - 2314-6826
DOI - 10.1155/2015/546716
Subject(s) - pulsatile flow , streamlines, streaklines, and pathlines , mechanics , shear stress , newtonian fluid , non newtonian fluid , generalized newtonian fluid , vorticity , carreau fluid , materials science , classical mechanics , physics , mathematics , viscosity , shear rate , vortex , thermodynamics , medicine , cardiology
The paper presents a numerical investigation of non-Newtonian modeling effects on unsteady periodic flows in a two-dimensional (2D) constricted channel with moving wall using finite volume method. The governing Navier-Stokes equations have been modified using the Cartesian curvilinear coordinates to handle complex geometries, such as, arterial stenosis. The physiological pulsatile flow has been used at the inlet position as an inlet velocity. The flow is characterized by the Reynolds numbers 300, 500, and 750 that are appropriate for large arteries. The investigations have been carried out to characterize four different non-Newtonian constitutive equations of blood, namely, the (i) Carreau, (ii) Cross, (iii) Modified-Casson, and (iv) Quemada. In these four models, blood viscosity is a nonlinear function of shear rates. The Newtonian model has been investigated to study the physics of fluid and the results are compared with the non-Newtonian viscosity models. The numerical results are presented in terms of streamwise velocity, wall shear stress, pressure distribution as well as the vorticity, streamlines, and vector plots indicating recirculation zones at the poststenotic region. Comparison has also been illustrated in terms of wall pressure and wall shear stress for the Cross model considering different amplitudes of wall oscillation
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