Bessems David, Giannopapa Christina G, Rutten Marcel C M, van de Vosse Frans N
Department of Biomedical Engineering, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, The Netherlands.
J Biomech. 2008;41(2):284-91. doi: 10.1016/j.jbiomech.2007.09.014. Epub 2007 Nov 26.
Time-domain-based one-dimensional wave propagation models of the arterial system are preferable over one-dimensional wave propagation models in the frequency domain since the latter neglect the non-linear convection forces present in the physiological situation, especially when the vessel is tapered. Moreover, one-dimensional wave propagation models of the arterial system can be used to provide boundary conditions for fully three-dimensional fluid-structure interaction computations that are usually defined in the time domain. In this study, a time-domain-based one-dimensional wave propagation model in a cross-sectional area, flow and pressure (A,q,p)-formulation is developed. Using this formulation, a constitutive law that includes viscoelasticity based on the mechanical behaviour of a Kelvin body, is introduced. The resulting pressure and flow waves travelling through a straight and tapered vessel are compared to experimental data obtained from measurements in an in vitro setup. The model presented shows to be well suited to predict wave propagation through these straight and tapered vessels with viscoelastic wall properties and hereto can serve as a time-domain-based method to model wave propagation in the human arterial system.
基于时域的动脉系统一维波传播模型比频域中的一维波传播模型更可取,因为后者忽略了生理情况下存在的非线性对流力,特别是当血管呈锥形时。此外,动脉系统的一维波传播模型可用于为通常在时域中定义的全三维流固相互作用计算提供边界条件。在本研究中,开发了一种基于时域的一维波传播模型,采用横截面积、流量和压力(A,q,p)公式。使用该公式,引入了一种基于开尔文体力学行为的包含粘弹性的本构定律。将通过直管和锥形管传播的压力波和流量波与在体外装置中测量获得的实验数据进行比较。所提出的模型显示非常适合预测具有粘弹性壁特性的直管和锥形管中的波传播,因此可以作为一种基于时域的方法来模拟人体动脉系统中的波传播。