Comparison and analysis of the Lyapunov exponents of blood flow signal of healthy and stenotic artery

被引:0
|
作者
Shan, HN [1 ]
Wang, ZQ [1 ]
Wang, J [1 ]
Wang, PL [1 ]
机构
[1] Nanjing Univ Sci & Technol, Dept Automat Control, Nanjing 210094, Peoples R China
关键词
Lyapunov exponent; chaos; arterial stenosis; blood flow signal;
D O I
暂无
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The Lyapunov exponent is an important index reflecting dynamic characteristics of nonlinear systems. In order to study the value of the largest Lyapunov exponent on diagnosing the arterial stenosis in various degrees, we acquired the blood flow signal on the healthy and stenotic internal carotid arterial in white rabbits by transcranial Doppler ultrasound and the collection system of Doppler Ultrasound's signal designed by ourselves, calculated the largest Lyapunov exponents respectively, analyzed and compared the dynamic state of the blood flow. The results show that the largest Lyapunov exponents of the blood flow signal in the white rabbits with the healthy internal carotid arterial are negative, and the blood flow is non-chaos. The largest Lyapunov exponents of the blood flow signal in the white rabbits with the stenotic internal carotid arterial are positive, and the blood flow is chaos. The larger the value of the largest Lyapunov exponent is, the higher the degree of stenosis is. Perhaps, it will provide a new approach to diagnose the arterial stenosis.
引用
收藏
页码:211 / 216
页数:6
相关论文
共 50 条
  • [41] A New Method for Studying Blood Flow Through a Stenotic Artery in the Presence of a Magnetic Field
    Abdul-Wahab M.S.
    Al-Saif A.-S.J.A.
    International Journal of Applied and Computational Mathematics, 2024, 10 (2)
  • [42] Heat and Mass Transfer in Micropolar Model for Blood Flow Through a Stenotic Tapered Artery
    Dada, Moses S.
    Alamu-Awoniran, Funmilola
    APPLICATIONS AND APPLIED MATHEMATICS-AN INTERNATIONAL JOURNAL, 2020, 15 (02): : 1114 - 1134
  • [43] Magnetohydrodynamic blood flow study in stenotic coronary artery using lattice Boltzmann method
    Cherkaoui, Ikram
    Bettaibi, Soufiene
    Barkaoui, Abdelwahed
    Kuznik, Frederic
    COMPUTER METHODS AND PROGRAMS IN BIOMEDICINE, 2022, 221
  • [44] Rheological analysis of magnetized trihybrid nanofluid drug carriers in unsteady blood flow through a single-stenotic artery
    Zaman, Tahir
    Shah, Zahir
    Rooman, Muhammad
    Khan, Waris
    Alshehri, Mansoor H.
    Vrinceanu, Narcisa
    CHINESE JOURNAL OF PHYSICS, 2024, 91 : 538 - 559
  • [45] Response surface optimization and sensitive analysis on biomagnetic blood Carreau nanofluid flow in stenotic artery with motile gyrotactic microorganisms
    Tao-Qian Tang
    Zahir Shah
    Thirupathi Thumma
    Muhammad Rooman
    Narcisa Vrinceanu
    Mansoor H. Alshehri
    SN Applied Sciences, 2023, 5
  • [46] Pulsatile pressure-driven non-Newtonian blood flow through a porous stenotic artery: A computational analysis
    Fahim, Muhammad
    Sajid, Muhammad
    Ali, Nasir
    NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 2024,
  • [47] Response surface optimization and sensitive analysis on biomagnetic blood Carreau nanofluid flow in stenotic artery with motile gyrotactic microorganisms
    Tang, Tao-Qian
    Shah, Zahir
    Thumma, Thirupathi
    Rooman, Muhammad
    Vrinceanu, Narcisa
    Alshehri, Mansoor H.
    SN APPLIED SCIENCES, 2023, 5 (12):
  • [48] Computational Hemodynamic Analysis of Flow Through Flexible Permeable Stenotic Tapered Artery
    Reddy J.V.R.
    Srikanth D.
    Mandal P.K.
    International Journal of Applied and Computational Mathematics, 2017, 3 (Suppl 1) : 1261 - 1287
  • [49] Dipyridamole reduces but nicorandil augments subendocardial blood flow in the territory perfused by stenotic coronary artery
    Maekawa, Y
    Ito, H
    Okamura, A
    Hayashi, N
    Hashimoto, T
    Fujii, K
    CIRCULATION, 2004, 110 (17) : 471 - 471
  • [50] Double Population Lattice Boltzmann Model for Magneto-Hydrodynamic Blood Flow in Stenotic Artery
    Cherkaoui, Ikram
    Bettaibi, Soufiene
    Barkaoui, Abdelwahed
    CELLULAR AUTOMATA (ACRI 2022), 2022, 13402 : 130 - 141