An attenuating electric transmission line model using Telegraph equations was developed to analyze the dynamics of the arterial circulation, providing expressions for impedance and phase velocity.
The study demonstrates the use of Telegraph equations in an attenuating electric transmission line as a mathematical model for understanding arterial circulation dynamics.
The Telegraph equations have been used to obtain expressions for the following quantities in an attenuating electric transmission line: 1. the input impedance in terms of the length of an open-circuited line, 2. the modulus of the voltage as a function of the distance along an open-circuited line, 3. the ` apparent phase velocity at a point ' along a line, as a function of the distance from the origin and the nature of the termination, 4. the ` apparent phase velocity over a finite interval ' for the same type of line, 5. the modulus of the reflection coefficient in terms of (4). Numerical examples have been computed for (1)-(4) and are presented. The use of the attenuating electric line as a model in approaching an understanding of the dynamics of the arterial circulation is outlined, and the limitations discussed.
Michael G. Taylor (Tue,) conducted a other in Arterial circulation dynamics. Attenuating electric transmission line model was evaluated. An attenuating electric transmission line model using Telegraph equations was developed to analyze the dynamics of the arterial circulation, providing expressions for impedance and phase velocity.
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