Onset and nature of flow-induced vibrations in cerebral aneurysms via fluid-structure interaction simulations

被引:13
|
作者
Bruneau, David A. [1 ]
Valen-Sendstad, Kristian [2 ]
Steinman, David A. [1 ]
机构
[1] Univ Toronto, Dept Mech & Ind Engn, Toronto, ON, Canada
[2] Simula Res Lab, Dept Computat Physiol, Oslo, Norway
基金
加拿大自然科学与工程研究理事会;
关键词
Aneurysm; Biological vibration; High-frequency wall motion; Fluid-structure interaction; Flow instability; Spectral analysis; Hemodynamics; INTRACRANIAL VASCULAR-LESIONS; NONINVASIVE DETECTION; WALL VIBRATIONS; INSTABILITIES; HEMODYNAMICS; PREVALENCE; DYNAMICS; ARTERIES; IMPACT; GAP;
D O I
10.1007/s10237-022-01679-x
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Clinical, experimental, and recent computational studies have demonstrated the presence of wall vibrations in cerebral aneurysms, thought to be induced by blood flow instability. These vibrations could induce irregular, high-rate deformation of the aneurysm wall, and potentially disrupt regular cell behavior and promote deleterious wall remodeling. In order to elucidate, for the first time, the onset and nature of such flow-induced vibrations, in this study we imposed a linearly increasing flow rate on high-fidelity fluid-structure interaction models of three anatomically realistic aneurysm geometries. Prominent narrow-band vibrations in the range of 100-500 Hz were found in two out of the three aneurysm geometries tested, while the case that did not exhibit flow instability did not vibrate. Aneurysm vibrations consisted mostly of fundamental modes of the entire aneurysm sac, with the vibrations exhibiting more frequency content at higher frequencies than the flow instabilities driving those vibrations. The largest vibrations occurred in the case which exhibited strongly banded fluid frequency content, and the vibration amplitude was highest when the strongest fluid frequency band was an integer multiple of one of the natural frequencies of the aneurysm sac. Lower levels of vibration occurred in the case which exhibited turbulent-like flow with no distinct frequency bands. The current study provides a plausible mechanistic explanation for the high-frequency sounds observed in cerebral aneurysms, and suggests that narrow-band (vortex-shedding type) flow might stimulate the wall more, or at least at lower flow rates, than broad-band, turbulent-like flow.
引用
收藏
页码:761 / 771
页数:11
相关论文
共 50 条
  • [1] Onset and nature of flow-induced vibrations in cerebral aneurysms via fluid–structure interaction simulations
    David A. Bruneau
    Kristian Valen-Sendstad
    David A. Steinman
    Biomechanics and Modeling in Mechanobiology, 2023, 22 : 761 - 771
  • [2] Fluid-Structure Interaction Simulations of the Initiation Process of Cerebral Aneurysms
    Nagy, Jozsef
    Fenz, Wolfgang
    Miron, Veronika M.
    Thumfart, Stefan
    Maier, Julia
    Major, Zoltan
    Stefanits, Harald
    Oberndorfer, Johannes
    Stroh, Nico
    Mazanec, Vanessa
    Rauch, Philip-Rudolf
    Gruber, Andreas
    Gmeiner, Matthias
    BRAIN SCIENCES, 2024, 14 (10)
  • [3] Computational vascular fluid-structure interaction: methodology and application to cerebral aneurysms
    Bazilevs, Y.
    Hsu, M. -C.
    Zhang, Y.
    Wang, W.
    Kvamsdal, T.
    Hentschel, S.
    Isaksen, J. G.
    BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2010, 9 (04) : 481 - 498
  • [4] Influence of wall thickness on fluid-structure interaction computations of cerebral aneurysms
    Torii, Ryo
    Oshima, Marie
    Kobayashi, Toshio
    Takagi, Kiyoshi
    Tezduyar, Tayfun E.
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN BIOMEDICAL ENGINEERING, 2010, 26 (3-4) : 336 - 347
  • [5] Comparative Assessment of Biomechanical Parameters in Subjects With Multiple Cerebral Aneurysms Using Fluid-Structure Interaction Simulations
    Shidhore, Tanmay C.
    Cohen-Gadol, Aaron A.
    Rayz, Vitaliy L.
    Christov, Ivan C.
    JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2023, 145 (05):
  • [6] Fluid-Structure Interaction Simulation: Effect of Endovascular Coiling in Cerebral Aneurysms Considering Anisotropically Deformable Walls
    Vijayakumar, Vidhya
    Jayakumar, J. S.
    ADVANCES IN FLUID AND THERMAL ENGINEERING, 2019, : 435 - 443
  • [7] A fully-coupled fluid-structure interaction simulation of cerebral aneurysms
    Bazilevs, Y.
    Hsu, M. -C.
    Zhang, Y.
    Wang, W.
    Liang, X.
    Kvamsdal, T.
    Brekken, R.
    Isaksen, J. G.
    COMPUTATIONAL MECHANICS, 2010, 46 (01) : 3 - 16
  • [8] Comparison between computational fluid dynamics, fluid-structure interaction and computational structural dynamics predictions of flow-induced wall mechanics in an anatomically realistic cerebral aneurysm model
    Valencia, Alvaro
    Munoz, Francisco
    Araya, Sebastian
    Rivera, Rodrigo
    Bravo, Eduardo
    INTERNATIONAL JOURNAL OF COMPUTATIONAL FLUID DYNAMICS, 2009, 23 (09) : 649 - 666
  • [9] Fluid-Structure Interaction Simulation of Blood Flow and Cerebral Aneurysm: Effect of Partly Blocked Vessel
    Saeedi, Milad
    Shamloo, Amir
    Mohammadi, Ariz
    JOURNAL OF VASCULAR RESEARCH, 2019, 56 (06) : 296 - 307
  • [10] Fluid-structure interaction simulations of cerebral arteries modeled by isotropic and anisotropic constitutive laws
    Tricerri, Paolo
    Dede, Luca
    Deparis, Simone
    Quarteroni, Alfio
    Robertson, Anne M.
    Sequeira, Adelia
    COMPUTATIONAL MECHANICS, 2015, 55 (03) : 479 - 498