DocumentCode :
1272586
Title :
Arterial pulse wave reflection as feedback
Author :
Quick, Christopher M. ; Berger, David S. ; Noordergraaf, Abraham
Author_Institution :
Center for Cerebrovascular Res., California Univ., San Francisco, CA, USA
Volume :
49
Issue :
5
fYear :
2002
fDate :
5/1/2002 12:00:00 AM
Firstpage :
440
Lastpage :
445
Abstract :
Traditionally, input impedance (Z in) has been used to characterize the global dynamic properties of an arterial system independent of properties of the heart. Defined as the relationship of pressure and flow at the entrance of an arterial system, it describes the ability of an arterial system to dynamically impede blood flow. Recently, a new description has been developed that also characterizes the arterial system independent of properties of the heart. Apparent arterial compliance (C app) is defined as the dynamic relationship of input pressure and volume stored in an arterial system, and describes the ability of the arterial system to dynamically store blood. Both Z in and C app are influenced by pulse wave propagation and reflection. However, the functional form of C app lends itself to describing the arterial system in terms of negative feedback. Pulse wave reflection decreases the pulsatile volume stored (gain) at low frequencies, but increases the range of frequencies (bandwidth) in which the pulsatile volume is determined by total arterial compliance. This paper illustrates, by simple analytical formula, large-scale arterial system modeling, and direct analysis of data, how this conceptualization of reflection offers a new means to interpret changes in arterial system dynamics resulting from changes in arterial compliance.
Keywords :
biocontrol; blood vessels; cardiovascular system; feedback; haemodynamics; physiological models; pulsatile flow; apparent arterial compliance; arterial pulse wave reflection; arterial system; bandwidth; blood flow; feedback; functional form; global dynamic properties; heart; input impedance; input pressure; large-scale arterial system modeling; low frequencies; negative feedback; pressure-flow relationship; pulsatile volume; pulse wave propagation; pulse wave reflection; range of frequencies; total arterial compliance; Bandwidth; Blood flow; Data analysis; Frequency; Heart; Impedance; Large-scale systems; Modeling; Negative feedback; Reflection; Animals; Arteries; Compliance; Dogs; Elasticity; Feedback; Hemodynamics; Humans; Linear Models; Models, Cardiovascular; Spectrum Analysis; Vascular Resistance;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.995682
Filename :
995682
Link To Document :
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