Adaptive grid generation in a patient-specific cerebral aneurysm

被引:3
|
作者
Hodis, Simona [1 ]
Kallmes, David F. [2 ,3 ]
Dragomir-Daescu, Dan [3 ,4 ]
机构
[1] Dept Radiol, Mayo Clin, Rochester, MN 55905 USA
[2] Mayo Clin, Dept Radiol, Rochester, MN 55905 USA
[3] Mayo Clin, Coll Med, Rochester, MN 55905 USA
[4] Mayo Clin, Div Engn, Rochester, MN 55905 USA
来源
PHYSICAL REVIEW E | 2013年 / 88卷 / 05期
关键词
FLOW; IMPLEMENTATION; HELICITY; VORTEX;
D O I
10.1103/PhysRevE.88.052720
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Adapting grid density to flow behavior provides the advantage of increasing solution accuracy while decreasing the number of grid elements in the simulation domain, therefore reducing the computational time. One method for grid adaptation requires successive refinement of grid density based on observed solution behavior until the numerical errors between successive grids are negligible. However, such an approach is time consuming and it is often neglected by the researchers. We present a technique to calculate the grid size distribution of an adaptive grid for computational fluid dynamics (CFD) simulations in a complex cerebral aneurysm geometry based on the kinematic curvature and torsion calculated from the velocity field. The relationship between the kinematic characteristics of the flow and the element size of the adaptive grid leads to a mathematical equation to calculate the grid size in different regions of the flow. The adaptive grid density is obtained such that it captures the more complex details of the flow with locally smaller grid size, while less complex flow characteristics are calculated on locally larger grid size. The current study shows that kinematic curvature and torsion calculated from the velocity field in a cerebral aneurysm can be used to find the locations of complex flow where the computational grid needs to be refined in order to obtain an accurate solution. We found that the complexity of the flow can be adequately described by velocity and vorticity and the angle between the two vectors. For example, inside the aneurysm bleb, at the bifurcation, and at the major arterial turns the element size in the lumen needs to be less than 10% of the artery radius, while at the boundary layer, the element size should be smaller than 1% of the artery radius, for accurate results within a 0.5% relative approximation error. This technique of quantifying flow complexity and adaptive remeshing has the potential to improve results accuracy and reduce computational time for patient-specific hemodynamics simulations, which are used to help assess the likelihood of aneurysm rupture using CFD calculated flow patterns.
引用
收藏
页数:8
相关论文
共 50 条
  • [21] Patient-specific blood flows simulation on cerebral aneurysm based on physically consistency feedback control
    Adib, Mohd Azrul Hisham Mohd
    Ii, Satoshi
    Watanabe, Yoshiyuki
    Wada, Shigeo
    2016 IEEE 16TH INTERNATIONAL CONFERENCE ON BIOINFORMATICS AND BIOENGINEERING (BIBE), 2016, : 334 - 337
  • [22] A mechanical study of patient-specific cerebral aneurysm models: a correlation between stress and geometrical index
    Valencia, A.
    Torrens, P.
    Rivera, R.
    Galvez, M.
    Bravo, Eduardo
    4TH EUROPEAN CONFERENCE OF THE INTERNATIONAL FEDERATION FOR MEDICAL AND BIOLOGICAL ENGINEERING, 2009, 22 (1-3): : 1951 - 1954
  • [23] Fluid-structure interaction modeling of a patient-specific cerebral aneurysm: influence of structural modeling
    Torii, Ryo
    Oshima, Marie
    Kobayashi, Toshio
    Takagi, Kiyoshi
    Tezduyar, Tayfun E.
    COMPUTATIONAL MECHANICS, 2008, 43 (01) : 151 - 159
  • [24] A reduced-order model of a patient-specific cerebral aneurysm for rapid evaluation and treatment planning
    Han, Suyue
    Schirmer, Clemens M.
    Modarres-Sadeghi, Yahya
    JOURNAL OF BIOMECHANICS, 2020, 103
  • [25] Study on hemodynamics in patient-specific thoracic aortic aneurysm
    Qiao, Ai-Ke
    Fu, Wen-Yu
    Liu, You-Jun
    THEORETICAL AND APPLIED MECHANICS LETTERS, 2011, 1 (01)
  • [26] A patient-specific cerebral blood flow model
    Helthuis, Jasper H. G.
    van Doormaal, Tristan P. C.
    Amin-Hanjani, Sepideh
    Du, XinJian
    Charbel, Fady T.
    Hillen, Berend
    van der Zwan, Albert
    JOURNAL OF BIOMECHANICS, 2020, 98
  • [28] Leveraging Patient-Specific Simulated Angiograms to Characterize Cerebral Aneurysm Hemodynamics using Computational Fluid Dynamics
    Chivukula, V
    White, R.
    Shields, A.
    Davies, J.
    Mokin, M.
    Bednarek, D. R.
    Rudin, S.
    Ionita, C.
    MEDICAL IMAGING 2022: BIOMEDICAL APPLICATIONS IN MOLECULAR, STRUCTURAL, AND FUNCTIONAL IMAGING, 2022, 12036
  • [29] A mechanical study of patient-specific cerebral aneurysm models: The correlations between stress and displacement with geometrical indices
    Valencia, Alvaro
    Torrens, Pedro
    Rivera, Rodrigo
    Galvez, Marcelo
    Bravo, Eduardo
    MECHANICS RESEARCH COMMUNICATIONS, 2009, 36 (05) : 642 - 651
  • [30] Blood flow dynamics in patient-specific cerebral aneurysm models: The relationship between wall shear stress and aneurysm area index
    Valencia, Alvaro
    Morales, Hernan
    Rivera, Rodrigo
    Bravo, Eduardo
    Galvez, Marcelo
    MEDICAL ENGINEERING & PHYSICS, 2008, 30 (03) : 329 - 340