Title :
Modeling the role of arterial windkessel in the enhancement and synchronization of low frequency vasomotor activity
Author :
Baselli, G. ; Porta, A. ; Pagani, M.
Author_Institution :
Dept. of Bioeng., Milan Polytech Univ., Italy
Abstract :
Arterial windkessel mechanisms and arterial pressure (AP) low frequency (LF) waves were investigated by means of simple lumped models of a compliant resistant/arterial tree and of flow regulation in peripheral vascular districts (PVDs) with three types of feedback: J) delay, 2) Van der Pol oscillator, 3) relay; all were able to actively compensate flow changes and to simulate peripheral LF vasomotion. Each PVD connected to a Windkessel compartment displayed a reduction and a disappearance of oscillations with low compliance, when the Windkessel equivalent time constant Teq fall below 2s. Two PVDs connected to the same Windkessel tended to phase opposition with a negative interference canceling their LF oscillations from AP. With a modest neural drive, cancellation was imperfect and AP waves appeared. Vasomotion, arterial compliances and neural triggers are all essential informing LF AP variability.
Keywords :
biocontrol; blood vessels; cardiovascular system; delays; haemodynamics; medical signal processing; neurophysiology; relaxation oscillators; relays; Van der Pol oscillator; arterial Windkessel; arterial compliances; arterial pressure low frequency waves; compliant resistant/arterial tree; delay feedback; flow changes; flow regulation; low frequency vasomotor activity enhancement; low frequency vasomotor activity synchronization; neural triggers; peripheral low frequency vasomotion; peripheral vascular districts; relay feedback; Atherosclerosis; Biomedical engineering; Control systems; Frequency synchronization; Hospitals; Interference cancellation; Optimal control; Oscillators; Pressure control; Relays;
Conference_Titel :
Computers in Cardiology, 2003
Print_ISBN :
0-7803-8170-X
DOI :
10.1109/CIC.2003.1291085