Pulse wave propagation in a model human arterial network: Assessment of 1-D numerical simulations against in vitro measurements

被引:217
作者
Matthys, Koen S.
Alastruey, Jordi
Peiro, Joaquim
Khir, Ashraf W.
Segers, Patrick
Verdonck, Pascal R.
Parker, Kim H.
Sherwin, Spencer J. [1 ]
机构
[1] Imperial Coll, Dept Aeronaut, London, England
[2] Imperial Coll, Dept Bioengn, London, England
[3] Brunel Univ, Sch Engn & Design, Uxbridge, Middx, England
[4] Univ Ghent, Inst Biomed Technol, Cardiovasc Mech & Biofluid Dynam Res Unit, Ghent, Belgium
基金
英国工程与自然科学研究理事会;
关键词
pulse wave propagation; experimental modelling; one-dimensional modelling; time-domain formulation; bifurcating network of vessels;
D O I
10.1016/j.jbiomech.2007.05.027
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
A numerical model based on the nonlinear, one-dimensional (1-D) equations of pressure and flow wave propagation in conduit arteries is tested against a well-defined experimental 1:1 replica of the human arterial tree. The tree consists of 37 silicone branches representing the largest central systemic arteries in the human, including the aorta, carotid arteries and arteries that perfuse the upper and lower limbs and the main abdominal organs. The set-up is mounted horizontally and connected to a pulsatile pump delivering a periodic output similar to the aortic flow. Terminal branches end in simple resistance models, consisting of stiff capillary tubes leading to an overflow reservoir that reflects a constant venous pressure. The parameters required by the numerical algorithm are directly measured in the in vitro set-up and no data fitting is involved. Comparison of experimental and numerical pressure and flow waveforms shows the ability of the 1-D time-domain formulation to capture the main features of pulse wave propagation measured throughout the system test. As a consequence of the simple resistive boundary conditions used to reduce the uncertainty of the parameters involved in the simulation, the experimental set-up generates waveforms at terminal branches with additional non-physiological oscillations. The frequencies of these oscillations are well captured by the I-D model, even though amplitudes are overestimated. Adding energy losses in bifurcations and including fluid inertia and compliance to the purely resistive terminal models does not reduce the underdamped effect, suggesting that wall visco-elasticity might play an important role in the experimental results. Nevertheless, average relative root-mean-square errors between simulations and experimental waveforms are smaller than 4% for pressure and 19% for the flow at all 70 locations studied. (c) 2007 Elsevier Ltd. All rights reserved.
引用
收藏
页码:3476 / 3486
页数:11
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