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Modeling and analysis of biomagnetic blood Carreau fluid flow through a stenosis artery with magnetic heat transfer: A transient study
by
Daqiqshirazi, Mohammadreza
, Abdollahzadeh Jamalabadi, Mohammad Yaghoub
, Nguyen, Truong Khang
, Nasiri, Hossein
, Safaei, Mohammad Reza
in
Aneurysms
/ Arterial stenosis
/ Arteries
/ Arteries - physiopathology
/ Biology and Life Sciences
/ Biomagnetism
/ Biomedical engineering
/ Blood
/ Blood vessels
/ Computational fluid dynamics
/ Computational physics
/ Computer simulation
/ Constriction, Pathologic - physiopathology
/ Finite volume method
/ Flow velocity
/ Fluid
/ Fluid dynamics
/ Fluid flow
/ Fluids
/ Heat transfer
/ Hemodynamics
/ Humans
/ Hydrodynamics
/ Magnetic fields
/ Magnetic fluids
/ Magnetics
/ Magnetohydrodynamics
/ Mathematical models
/ Mechanical engineering
/ Mechanics
/ Medicine and Health Sciences
/ Models, Biological
/ Nanoparticles
/ Ocean circulation
/ Pain
/ Physical Sciences
/ Pressure drop
/ Regional Blood Flow
/ Shear stress
/ Shear stresses
/ Stenosis
/ Studies
/ Temperature
/ Temperature control
/ Temperature effects
/ Temperature range
/ Veins & arteries
/ Velocity
/ Wall shear stresses
/ Wall temperature
2018
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Modeling and analysis of biomagnetic blood Carreau fluid flow through a stenosis artery with magnetic heat transfer: A transient study
by
Daqiqshirazi, Mohammadreza
, Abdollahzadeh Jamalabadi, Mohammad Yaghoub
, Nguyen, Truong Khang
, Nasiri, Hossein
, Safaei, Mohammad Reza
in
Aneurysms
/ Arterial stenosis
/ Arteries
/ Arteries - physiopathology
/ Biology and Life Sciences
/ Biomagnetism
/ Biomedical engineering
/ Blood
/ Blood vessels
/ Computational fluid dynamics
/ Computational physics
/ Computer simulation
/ Constriction, Pathologic - physiopathology
/ Finite volume method
/ Flow velocity
/ Fluid
/ Fluid dynamics
/ Fluid flow
/ Fluids
/ Heat transfer
/ Hemodynamics
/ Humans
/ Hydrodynamics
/ Magnetic fields
/ Magnetic fluids
/ Magnetics
/ Magnetohydrodynamics
/ Mathematical models
/ Mechanical engineering
/ Mechanics
/ Medicine and Health Sciences
/ Models, Biological
/ Nanoparticles
/ Ocean circulation
/ Pain
/ Physical Sciences
/ Pressure drop
/ Regional Blood Flow
/ Shear stress
/ Shear stresses
/ Stenosis
/ Studies
/ Temperature
/ Temperature control
/ Temperature effects
/ Temperature range
/ Veins & arteries
/ Velocity
/ Wall shear stresses
/ Wall temperature
2018
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Modeling and analysis of biomagnetic blood Carreau fluid flow through a stenosis artery with magnetic heat transfer: A transient study
by
Daqiqshirazi, Mohammadreza
, Abdollahzadeh Jamalabadi, Mohammad Yaghoub
, Nguyen, Truong Khang
, Nasiri, Hossein
, Safaei, Mohammad Reza
in
Aneurysms
/ Arterial stenosis
/ Arteries
/ Arteries - physiopathology
/ Biology and Life Sciences
/ Biomagnetism
/ Biomedical engineering
/ Blood
/ Blood vessels
/ Computational fluid dynamics
/ Computational physics
/ Computer simulation
/ Constriction, Pathologic - physiopathology
/ Finite volume method
/ Flow velocity
/ Fluid
/ Fluid dynamics
/ Fluid flow
/ Fluids
/ Heat transfer
/ Hemodynamics
/ Humans
/ Hydrodynamics
/ Magnetic fields
/ Magnetic fluids
/ Magnetics
/ Magnetohydrodynamics
/ Mathematical models
/ Mechanical engineering
/ Mechanics
/ Medicine and Health Sciences
/ Models, Biological
/ Nanoparticles
/ Ocean circulation
/ Pain
/ Physical Sciences
/ Pressure drop
/ Regional Blood Flow
/ Shear stress
/ Shear stresses
/ Stenosis
/ Studies
/ Temperature
/ Temperature control
/ Temperature effects
/ Temperature range
/ Veins & arteries
/ Velocity
/ Wall shear stresses
/ Wall temperature
2018
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Modeling and analysis of biomagnetic blood Carreau fluid flow through a stenosis artery with magnetic heat transfer: A transient study
Journal Article
Modeling and analysis of biomagnetic blood Carreau fluid flow through a stenosis artery with magnetic heat transfer: A transient study
2018
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Overview
We present a numerical investigation of tapered arteries that addresses the transient simulation of non-Newtonian bio-magnetic fluid dynamics (BFD) of blood through a stenosis artery in the presence of a transverse magnetic field. The current model is consistent with ferro-hydrodynamic (FHD) and magneto-hydrodynamic (MHD) principles. In the present work, blood in small arteries is analyzed using the Carreau-Yasuda model. The arterial wall is assumed to be fixed with cosine geometry for the stenosis. A parametric study was conducted to reveal the effects of the stenosis intensity and the Hartman number on a wide range of flow parameters, such as the flow velocity, temperature, and wall shear stress. Current findings are in a good agreement with recent findings in previous research studies. The results show that wall temperature control can keep the blood in its ideal blood temperature range (below 40°C) and that a severe pressure drop occurs for blockages of more than 60 percent. Additionally, with an increase in the Ha number, a velocity drop in the blood vessel is experienced.
Publisher
Public Library of Science,Public Library of Science (PLoS)
Subject
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