DocumentCode :
62442
Title :
Experimental study on the pressure and pulse wave propagation in viscoelastic vessel tubes-effects of liquid viscosity and tube stiffness
Author :
Ikenaga, Yuki ; Nishi, Shohei ; Komagata, Yuka ; Saito, Masato ; Lagree, Pierre-Yves ; Asada, Takashi ; Matsukawa, Mami
Author_Institution :
Fac. of Sci. & Eng., Doshisha Univ., Kyoto, Japan
Volume :
60
Issue :
11
fYear :
2013
fDate :
Nov-13
Firstpage :
2381
Lastpage :
2388
Abstract :
A pulse wave is the displacement wave which arises because of ejection of blood from the heart and reflection at vascular bed and distal point. The investigation of pressure waves leads to understanding the propagation characteristics of a pulse wave. To investigate the pulse wave behavior, an experimental study was performed using an artificial polymer tube and viscous liquid. A polyurethane tube and glycerin solution were used to simulate a blood vessel and blood, respectively. In the case of the 40 wt% glycerin solution, which corresponds to the viscosity of ordinary blood, the attenuation coefficient of a pressure wave in the tube decreased from 4.3 to 1.6 dB/m because of the tube stiffness (Young¿s modulus: 60 to 200 kPa). When the viscosity of liquid increased from approximately 4 to 10 mPa·s (the range of human blood viscosity) in the stiff tube, the attenuation coefficient of the pressure wave changed from 1.6 to 3.2 dB/m. The hardening of the blood vessel caused by aging and the increase of blood viscosity caused by illness possibly have opposite effects on the intravascular pressure wave. The effect of the viscosity of a liquid on the amplitude of a pressure wave was then considered using a phantom simulating human blood vessels. As a result, in the typical range of blood viscosity, the amplitude ratio of the waves obtained by the experiments with water and glycerin solution became 1:0.83. In comparison with clinical data, this value is much smaller than that seen from blood vessel hardening. Thus, it can be concluded that the blood viscosity seldom affects the attenuation of a pulse wave.
Keywords :
Young´s modulus; biomechanics; blood; blood vessels; cardiology; elastic constants; haemodynamics; haemorheology; hardening; phantoms; physiological models; polymers; viscosity; Young´s modulus; aging; amplitude ratio; artificial polymer tube; blood ejection; blood vessel hardening; displacement wave; distal point; glycerin solution; heart; human blood vessel simulation; human blood viscosity; illness; intravascular pressure wave; liquid viscosity; ordinary blood viscosity; phantom; polyurethane tube; pressure wave amplitude; pressure wave attenuation coefficient; pressure wave propagation; propagation characteristics; pulse wave behavior; pulse wave propagation; tube stiffness; vascular bed; viscoelastic vessel tubes-; viscous liquid; water; Arteries; Attenuation; Blood; Electron tubes; Liquids; Viscosity; Adult; Arteries; Blood Flow Velocity; Blood Physiological Phenomena; Elastic Modulus; Elasticity; Glycerol; Humans; Male; Models, Cardiovascular; Phantoms, Imaging; Pressure; Pulse Wave Analysis; Viscosity;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2013.6644741
Filename :
6644741
Link To Document :
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