Title :
Integration of the carotid baroreflex with a simple pulsatile cardiovascular model
Author :
Yih-Choung Yu ; Xuan Liu
Author_Institution :
Electr. & Comput. Eng., Lafayette Coll., Easton, PA, USA
Abstract :
A mathematical model of short-term arterial pressure regulation by the carotid baroreflex was integrated with a simple cardiovascular model to study the interactions between the baroreguation and the pusating heart. The cardiovascular system was modeled as an electric circuit, consisting of the left ventricle as a time-varying capacitance, the systemic circulation as a four-element RLC circuit, the pulmonary circulation as a constant capacitor with a dependent current source, the left atrium as a constant capacitor, and the heart valves as ideal diodes in series with resistors. The baroreflex model receives the systemic arterial pressure to adjust the heart rate, the maximum elastance of the left ventricle, the systemic vascular resistance, and the unstressed blood volume in the systemic vein, and thus maintain the mean arterial pressure close to its setpoint. The key hemodynamic variables simulated from this integrated model were closed to their values provided in literature. Validation tests also suggested that this simple model could simulate the baroregulation phenomena very similar to that obtained from a detailed cardiovascular model. This model can be used as a tool in applications such as pathology and medical device development in which a simple cardiovascular model provides the advantages.
Keywords :
RLC circuits; blood vessels; capacitance; capacitors; cardiovascular system; constant current sources; diodes; haemodynamics; physiological models; pneumodynamics; resistors; baroregulation; cardiovascular system; carotid baroreflex; constant capacitor; dependent current source; elastance; electric circuit; four-element RLC circuit; heart valves; hemodynamic variables; ideal diodes; left atrium; left ventricle; mathematical model; pulmonary circulation; pulsating heart; resistors; short-term arterial pressure regulation; simple pulsatile cardiovascular model; systemic arterial pressure; systemic vascular resistance; systemic vein; time-varying capacitance; unstressed blood volume; Baroreflex; Blood pressure; Capacitors; Cardiology; Cardiovascular system; Heart; Mathematical model; Medical simulation; RLC circuits; Time varying systems;
Conference_Titel :
Bioengineering Conference, Proceedings of the 2010 IEEE 36th Annual Northeast
Conference_Location :
New York, NY
Print_ISBN :
978-1-4244-6879-9
DOI :
10.1109/NEBC.2010.5458184