DocumentCode :
3182504
Title :
Application of cardiovascular models in comparative physiology and blood pressure variability
Author :
Avolio, Alberto P. ; Ke Xu ; Butlin, Mark
Author_Institution :
Australian Sch. of Adv. Med., Macquarie Univ., Sydney, NSW, Australia
fYear :
2013
fDate :
3-7 July 2013
Firstpage :
217
Lastpage :
220
Abstract :
The usefulness of cardiovascular models is determined by their intended function with respect to elucidating underlying hemodynamic concepts and to enable simulations that will assist in understanding the effects of specific parameters. Models can take different forms, including mock circulatory constructs with physical components, mathematical representations of parameter space relations employing constitutive equations, or closed form representations of electrical circuit analogs described in the time or frequency domain. This investigation describes the use of cardiovascular models based on electrical analogs of mechanical hydrodynamic systems to elucidate two different physiologic concepts: (i) the use of distributed vascular impedance to investigate comparative physiology of optimal design and features related to body size across a broad range of animal species; (ii) use of lumped parameter models to assess the role of arterial stiffness in blood pressure variability. The impedance model shows that an allometric relationship between body weight and aortic effective length can be determined by using the frequency of minimum input impedance and aortic pulse wave velocity. This concept provides a background for optimal matching of body size and hemodynamic load on the heart. The lumped parameter model indicates that arterial stiffness, simulated by the total arterial compliance term, has a significant impact on variability of arterial pressure when changes are due to dynamic alterations of peripheral resistance. In addition, the known pressure dependency of arterial stiffness results in a curvilinear relationship between blood pressure variability and mean pressure. This has implications in hypertensive treatment where there are marked changes in arterial stiffness, as occurs with aging.
Keywords :
biomedical engineering; blood vessels; cardiovascular system; diseases; elasticity; flow simulation; haemodynamics; patient treatment; physiological models; aging; allometric relationship; animal species; aortic effective length; aortic pulse wave velocity frequency; arterial pressure variability; arterial stiffness; blood pressure variability; body weight; cardiovascular model application; closed form representation; comparative physiology; constitutive equation; curvilinear relationship; electrical analog; electrical circuit analog; frequency domain; heart hemodynamic load; hemodynamic concept; hypertensive treatment; impedance model; lumped parameter model; mathematical representation; mean pressure; mechanical hydrodynamic systems; minimum input impedance frequency; mock circulatory construct; optimal body size-hemodynamic load matching; parameter effect; parameter space relation; peripheral resistance alteration; physical component; physiologic concept; pressure dependency; simulation; time domain; total arterial compliance term; vascular impedance distribution; Blood pressure variability; Heart rate; Impedance; Load modeling; Mathematical model; Physiology;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2013 35th Annual International Conference of the IEEE
Conference_Location :
Osaka
ISSN :
1557-170X
Type :
conf
DOI :
10.1109/EMBC.2013.6609476
Filename :
6609476
Link To Document :
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