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
  • [41] Fluid-structure interaction simulations of patient-specific aortic dissection
    Baeumler, Kathrin
    Vedula, Vijay
    Sailer, Anna M.
    Seo, Jongmin
    Chiu, Peter
    Mistelbauer, Gabriel
    Chan, Frandics P.
    Fischbein, Michael P.
    Marsden, Alison L.
    Fleischmann, Dominik
    BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2020, 19 (05) : 1607 - 1628
  • [42] Fluid-structure interaction analysis of the rudder vibrations in propeller wake
    Zhang, Weipeng
    Li, Fugeng
    Ma, Jiachen
    Ning, Xiaoshen
    Sun, Shili
    Hu, Yulong
    OCEAN ENGINEERING, 2022, 265
  • [43] Effect of TAVR commissural alignment on coronary flow: A fluid-structure interaction analysis
    Oks, David
    Houzeaux, Guillaume
    Vazquez, Mariano
    Neidlin, Michael
    Samaniego, Cristobal
    COMPUTER METHODS AND PROGRAMS IN BIOMEDICINE, 2023, 242
  • [44] Effects of blood flow patent and cross-sectional area on hemodynamic into patient-specific cerebral aneurysm via fluid-structure interaction method: A review
    Nazri, Nurul Najihah Mohd
    Matalif, Muhammad Uzair
    Adib, Mohd Azrul Hisham Mohd
    5TH INTERNATIONAL CONFERENCE ON MECHANICAL ENGINEERING RESEARCH 2019 (ICMER 2019), 2020, 788
  • [45] Fluid-structure interaction for a pressure driven flow
    Pati, Arati Nanda
    MATHEMATICAL AND COMPUTER MODELLING, 2008, 47 (1-2) : 1 - 26
  • [46] Comparative study of arterial wall models for numerical fluid-structure interaction simulation of aortic arch aneurysms
    Ferreira da Silva, Mario Luis
    Goncalves, Saulo de Freitas
    Huebner, Rudolf
    JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING, 2022, 44 (05)
  • [47] Fluid-structure interaction simulation framework for cerebral aneurysm wall deformation
    Papoulias, Giorgos
    Nousias, Stavros
    Moustakas, Konstantinos
    2019 10TH INTERNATIONAL CONFERENCE ON INFORMATION, INTELLIGENCE, SYSTEMS AND APPLICATIONS (IISA), 2019, : 285 - 291
  • [48] Fluid-structure interaction simulations of venous valves: A monolithic ALE method for large structural displacements
    Calandrini, Sara
    Aulisa, Eugenio
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN BIOMEDICAL ENGINEERING, 2019, 35 (02)
  • [49] A simplified method to account for wall motion in patient-specific blood flow simulations of aortic dissection: Comparison with fluid-structure interaction
    Bonfanti, Mirko
    Balabani, Stavroula
    Alimohammadi, Mona
    Agu, Obiekezie
    Homer-Vanniasinkam, Shervanthi
    Diaz-Zuccarini, Vanessa
    MEDICAL ENGINEERING & PHYSICS, 2018, 58 : 72 - 79
  • [50] A computational fluid-structure interaction model of the blood flow in the healthy and varicose saphenous vein
    Razaghi, Reza
    Karimi, Alireza
    Rahmani, Shahrokh
    Navidbakhsh, Mahdi
    VASCULAR, 2016, 24 (03) : 254 - 263