DocumentCode
1851509
Title
Mathematical Modeling of a Complex System for MHD Flow in Hemodynamics
Author
Sankar, D.S. ; Jaffar, N.A. ; Ismail, A.I.M. ; Nagar, Atulya K.
Author_Institution
Sch. of Math. Sci., Univ. Sams Malaysia, Minden, Malaysia
fYear
2011
fDate
27-29 Sept. 2011
Firstpage
324
Lastpage
328
Abstract
Many physiological system in humans and animals are complex systems. Hemodynamic is a branch of physiology and is a complex system which deals with the study of blood flow in arteries. We study the complex physical system of blood flow in a narrow artery with asymmetric stenos is in the presence of external magnetic field, treating blood as Herschel-Bulkey fluid model. Finite difference scheme is applied to solve the resulting system of nonlinear partial differential equations with appropriate initial and boundary conditions. The finite difference schemes for the velocity distribution, skin friction, flow rate and longitudinal impedance to flow are obtained. It is found that the velocity decreases with the increase of the magnetic field and pressure gradient reverse behavior is noticed when the yield stress and depth of the stenos is increase. It is also observed that the flow rate decreases with the increase of the stenos is shape parameter, power law index and yield stress. Also, it is noted that the presence of external magnetic field influences the mean velocity by increasing its magnitude significantly in arteries of different radii.
Keywords
biomagnetism; blood vessels; finite difference methods; friction; haemodynamics; magnetohydrodynamics; nonlinear differential equations; partial differential equations; skin; Herschel-Bulkey fluid model; MHD flow; arteries; blood flow; complex system; finite difference scheme; flow rate; hemodynamics; longitudinal impedance; magnetic field; nonlinear partial differential equations; physiology; pressure gradient reverse behavior; skin friction; velocity distribution; Arteries; Blood; Blood flow; Fluids; Friction; Magnetic fields; Skin; Asymmetric stenosis; Complex system; Herschel-Bulkley fluid; Magnetic field; Mathematical modeling; Pulsatile blood flow;
fLanguage
English
Publisher
ieee
Conference_Titel
Bio-Inspired Computing: Theories and Applications (BIC-TA), 2011 Sixth International Conference on
Conference_Location
Penang
Print_ISBN
978-1-4577-1092-6
Type
conf
DOI
10.1109/BIC-TA.2011.47
Filename
6046921
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