A coupled one dimension and transmission line model for arterial flow simulation

被引:5
|
作者
Baker, Nathaniel [1 ]
Clarke, Richard [2 ]
Ho, Harvey [3 ]
机构
[1] Natl Polytech Inst Toulouse, ENSEEIHT, Toulouse, France
[2] Univ Auckland, Dept Engn Sci, Auckland, New Zealand
[3] Univ Auckland, Auckland Bioengn Inst, Auckland, New Zealand
关键词
arterial flow; mathematical model; reflection coefficient; wave propagation; BLOOD-FLOW; PARAMETERS; DYNAMICS;
D O I
10.1002/cnm.3327
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A broad choice of numerical schemes and methods currently exists for blood flow simulations. The results rely critically on the prescription of boundary conditions. The outflow boundary condition for a one-dimensional (1D) flow solver is usually prescribed via a Windkessel or lumped parameter model. The weakness of such an approach is the determination of the parameters. In the present work, we use an alternative approach, that is, a reflection coefficient (RC), to lumped parameter models for distal boundary conditions. With such a RC, the number of parameters required is reduced to one. We derive the theoretical foundation for the RC. Specifically, we couple a transmission line theory for peripheral resistance with a 1D arterial flow solver. We apply this method to a healthy and a stenosed virtual aorta, and show this method can reproduce some subtle features in arterial pressure propagation, such as the steepened pressure waveform and the reflection from the stenosed site. In summary, the RC parameter has strong physical implications in the theory of wave propagation and may be used in flow simulations where reflections need to be explicitly modeled. Novelty Statement A novel coupled one-dimensional-transimission line model has been developed in this work with detailed implementations. Only one outflow boundary condition, that is, the refection coefficient is required in the model. Reflections for a pulse wave from aortic terminals as well as from a stenotic site are numerically simulated.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Generalized Model for Magnetically Insulated Transmission Line Flow
    Ottinger, Paul F.
    Schumer, Joseph W.
    Hinshelwood, David D.
    Allen, Raymond J.
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2008, 36 (05) : 2708 - 2721
  • [32] Circuit-PIC Coupled Model of 3D Simulation for Magnetically Insulated Transmission Line System
    Luo Wei
    Wang Hongguang
    Li Yongdong
    Pen Min
    2017 IEEE 21ST INTERNATIONAL CONFERENCE ON PULSED POWER (PPC), 2017,
  • [33] The interior transmission spectrum in one dimension
    Hickmann, Kyle S.
    INVERSE PROBLEMS, 2012, 28 (11)
  • [34] Complex Transmission Eigenvalues in One Dimension
    Zhang, Yalin
    Wang, Yanling
    Shi, Guoliang
    Liao, Shizhong
    ABSTRACT AND APPLIED ANALYSIS, 2014,
  • [35] External Antenna Coupled with One-Dimensional Free Access Transmission Line
    Shinozaki, Yuka
    Arai, Hiroyuki
    2017 IEEE ASIA PACIFIC MICROWAVE CONFERENCE (APMC), 2017, : 616 - 617
  • [36] Simulation of flow in sandstone with fluid coupled particle model
    Li, L
    Holt, RM
    ROCK MECHANICS IN THE NATIONAL INTEREST, VOLS 1 AND 2, 2001, : 165 - 172
  • [37] The application of simulation method in one dimension pipeline flow based on elastic pipeline
    Xue, Xiangdong
    Cao, Pengfei
    Shao, Jian
    Duan, Linjie
    Zhang, Jingnan
    Lan, Hao
    ADVANCES IN ENERGY, ENVIRONMENT AND MATERIALS SCIENCE, 2016, : 797 - 801
  • [38] Coupled modelling and simulation of power transmission lines: A systematic analysis of line losses
    Living, O.
    Nnamchi, S. N.
    Mundu, M. M.
    Ukagwu, K. J.
    Abdulkarim, A.
    ELECTRIC POWER SYSTEMS RESEARCH, 2024, 226
  • [39] Dispersive coupled transmission line simulation using an adaptive block lanczos algorithm
    Nguyen, TV
    Li, J
    Bai, ZJ
    PROCEEDINGS OF THE IEEE 1996 CUSTOM INTEGRATED CIRCUITS CONFERENCE, 1996, : 457 - 460
  • [40] Network Model of a Transmission Line with a Cable Ferrite for Simulation in LTspice
    Schulze, Steffen
    Al-Hamid, Moawia
    Leone, Marco
    2021 JOINT IEEE INTERNATIONAL SYMPOSIUM ON ELECTROMAGNETIC COMPATIBILITY, SIGNAL & POWER INTEGRITY, AND EMC EUROPE (EMC+SIPI AND EMC EUROPE), 2021, : 1099 - 1104