Investigating Hemodynamics in Intracranial Aneurysms with Irregular Morphologies: A Multiphase CFD Approach

被引:0
|
作者
Lampropoulos, Dimitrios S. [1 ]
Hadjinicolaou, Maria [1 ]
机构
[1] Hellen Open Univ, Sch Sci & Technol, Lab Appl Math, 18 Aristotelous St, Patras 26335, Greece
关键词
intracranial aneurysms; irregular geometry; computational fluid dynamics; hemodynamics; wall shear stress; multiphase blood flow model; 76-10; UNRUPTURED CEREBRAL ANEURYSMS; COMPUTATIONAL FLUID-DYNAMICS; WALL SHEAR-STRESS; RUPTURE; ANGIOGRAPHY; ARTERY; MODEL; SHAPE;
D O I
10.3390/math13030505
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
Unruptured intracranial aneurysms, affecting 2-5% of the population, are characterized by localized wall weakening and irregular morphologies, including features such as blebs, lobulations, or asymmetries, which are significant predictors of rupture risk. Although up to 57% of ruptured intracranial aneurysms exhibit irregular dome geometry, its influence on aneurysm stability remains underexplored. Irregular geometries are associated with adverse hemodynamic forces, such as increased wall shear stress (WSS), amplifying wall stress at specific regions, and promoting flow disturbances, which may increase aneurysm vulnerability. This study investigates the influence of aneurysm dome morphology, particularly in IAs with irregular domes that may include daughter blebs, using Computational Fluid Dynamics (CFD). Unlike prior CFD studies that modeled blood as Newtonian or non-Newtonian, this work employs a three-phase blood flow model, representing plasma and red blood cells (RBCs) as distinct phases. Numerical simulations, conducted via the Finite Volume Method, solve the Navier-Stokes equations to capture complex flow dynamics within cerebral vasculature. Key hemodynamic metrics, such as Wall Shear Stress (WSS), Wall Shear Stress Gradient (WSSG), and Viscous Dissipation Rate, are analyzed to assess the interplay between dome morphology and hemodynamic stressors.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Effects of Reynolds and Womersley Numbers on the Hemodynamics of Intracranial Aneurysms
    Asgharzadeh, Hafez
    Borazjani, Iman
    COMPUTATIONAL AND MATHEMATICAL METHODS IN MEDICINE, 2016, 2016
  • [22] Rupture point is associated with divergent hemodynamics in intracranial aneurysms
    Hejcl, Ales
    Brunatova, Jana
    Svihlova, Helena
    Vitecek, Jan
    Wunschova, Andrea Viteckova
    Sejkorova, Alena
    Stratilova, Maria Hundza
    Radovnicky, Tomas
    Sames, Martin
    Hron, Jaroslav
    FRONTIERS IN NEUROLOGY, 2024, 15
  • [23] Quantifying the Large-Scale Hemodynamics of Intracranial Aneurysms
    Byrne, G.
    Mut, F.
    Cebral, J.
    AMERICAN JOURNAL OF NEURORADIOLOGY, 2014, 35 (02) : 333 - 338
  • [24] Review of CFD Based Simulations to Study the Hemodynamics of Cerebral Aneurysms
    Maramkandam, Eldhose Babu
    Kannan, Anjana
    Valeti, Chanikya
    Manjunath, N.
    Panneerselvam, Nisanth Kumar
    Alagan, Azhaganmaadevi K.
    Panchal, Pratik M.
    Kannath, Santhosh K.
    Darshan, H. R.
    Nekkanti, Ram Kishan
    Akade, Bhushan
    Vilanilam, George C.
    Nair, Prakash
    Divakar, Ganesh
    Ahmed, Meraj
    Sudhir, B. J.
    Patnaik, B. S. V.
    JOURNAL OF THE INDIAN INSTITUTE OF SCIENCE, 2024, 104 (01) : 77 - 110
  • [25] MICROSURGICAL APPROACH TO INTRACRANIAL ANEURYSMS
    FOX, JL
    ACTA NEUROCHIRURGICA, 1979, 45 (3-4) : 329 - 329
  • [26] COMPUTER MODELING OF INTRACRANIAL SACCULAR AND LATERAL ANEURYSMS FOR THE STUDY OF THEIR HEMODYNAMICS
    BURLESON, AC
    STROTHER, CM
    TURITTO, VT
    NEUROSURGERY, 1995, 37 (04) : 774 - 782
  • [27] Intercorrelations of morphology with hemodynamics in intracranial aneurysms in computational fluid dynamics
    Qiu, Tianlun
    Jin, Guoliang
    Bao, Wuqiao
    Lu, Haitao
    NEUROSCIENCES, 2017, 22 (03) : 205 - 212
  • [28] Intracranial aneurysms: links among inflammation, hemodynamics and vascular remodeling
    Hashimoto, Tomoki
    Meng, Hui
    Young, William L.
    NEUROLOGICAL RESEARCH, 2006, 28 (04) : 372 - 380
  • [29] Hemodynamics of thrombus formation in intracranial aneurysms: An in silico observational study
    Liu, Qiongyao
    Sarrami-Foroushani, Ali
    Wang, Yongxing
    MacRaild, Michael
    Kelly, Christopher
    Lin, Fengming
    Xia, Yan
    Song, Shuang
    Ravikumar, Nishant
    Patankar, Tufail
    Taylor, Zeike A.
    Lassila, Toni
    Frangi, Alejandro F.
    APL BIOENGINEERING, 2023, 7 (03)
  • [30] Multiscale Modeling of Intracranial Aneurysms: Cell Signaling, Hemodynamics, and Remodeling
    Ho, Harvey
    Suresh, Vinod
    Kang, Wendy
    Cooling, Michael T.
    Watton, Paul N.
    Hunter, Peter J.
    IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2011, 58 (10) : 2974 - 2977