DocumentCode :
1513760
Title :
Analytical solution for pulsatile axial flow velocity waveforms in curved elastic tubes
Author :
Myers, Lance Jonathan ; Capper, Wayne Logan
Author_Institution :
Univ. of Cape Town Med. Sch. Obs., South Africa
Volume :
48
Issue :
8
fYear :
2001
Firstpage :
864
Lastpage :
873
Abstract :
An analytical solution for pulsatile axial flow velocity waveforms in curved elastic tubes is presented. The result is obtained by exact solution of linearized Navier-Stokes and tube motion equations in a toroidal coordinate system. Fourier analysis is used to divide the flow into constant and oscillatory components which are separately considered. The solution is used to investigate the effects of curvature on volumetric axial velocity flow waveforms, as would be measured by Doppler ultrasound techniques. In typical human arteries, the greatest effects of curvature on the volumetric axial flow are exerted on the constant component and at low values of the frequency parameter for the oscillatory components. Here, the magnitude and phase angle of oscillatory flow in the curved tube, relative to that in the straight tube, differ by maximum values of 1.2% and 0.15 rad, respectively. However, constant flow may vary by as much as 60% at high Dean numbers. The solution is presented in a form similar to Womersley´s solution for the straight elastic tube and may, thus, be incorporated into a transmission-line analog model. These models are frequently used to investigate axial flow velocity variations in mammalian circulatory systems and this work offers a tool which may extend these models to incorporate the effects of curvature.
Keywords :
Doppler measurement; Fourier analysis; Navier-Stokes equations; biomedical ultrasonics; blood flow measurement; physiological models; pulsatile flow; Doppler ultrasound techniques; Womersley´s solution; analytical solution; curved elastic tubes; high Dean numbers; pulsatile axial flow velocity waveforms; transmission-line analog model; typical human arteries; Arteries; Fluid flow measurement; Frequency; Humans; Navier-Stokes equations; Transmission lines; Ultrasonic imaging; Ultrasonic variables measurement; Velocity measurement; Volume measurement; Algorithms; Blood Flow Velocity; Fourier Analysis; Humans; Pulsatile Flow; Signal Processing, Computer-Assisted; Ultrasonography, Doppler;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.936363
Filename :
936363
Link To Document :
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