Mathematical Modelling of Time-Related Blood Velocity Changes in Human Aorta

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Wed, 2014/08/13 - 19:17
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Laboratorinė medicina. 2013,
t. 15,
Nr. 4,
p. 182 -
187

Summary

Background. The paper deals with original blood velocity measure - ments in the human aorta, by Accuvix 30 measurement system, based on the Doppier effect. The results were processed by three different methods.

First method. The first method is related to the image of the laminar blood flow in the aorta. The time interval between two heart beats is de­fined for the blood flow velocity to be analyzed. A mathematical model is offered for the analysis of blood flow velocity data: the differential equa­tion of the process, its solution, and the initial conditions.

Second method. Also, deviations of the blood flow velocity are ana­lyzed considering the main consistent pattern. A set of data describing actual deviations of blood flow velocity values from the theoretical trend established during the first processing of the measurement results is formed for this purpose. Analysis of these blood velocity fluctuations has revealed that the density function of the Fourier spectrum is modelled by the noise 1/f a where the index a =0.722 is determined from actual mea sure ments.

Third method. Finally, upon assessing the blood velocity values, the Reynolds number of the blood flow is found, which is very far from the critical value Re = 2300. The blood velocity values should be 2.5-3 times higher for the features of a turbulent blood flow to manifest.

Conclusions. To harmonize the laminar blood flow nature and the low Reynolds number with the low blood velocity fluctuations, the sug­gestion is made that this discrepancy may be caused by the superposi­tion of laminar and turbulent flows at the micro level.

Keywords: ordinary differential equations, turbulent flow, 1/fa noise, blood flow velocity, ultrasonic Doppler effect.

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