Computational fluid dynamics of stented intracranial aneurysms using adaptive embedded unstructured grids

被引:85
作者
Appanaboyina, S. [1 ]
Mut, F. [1 ]
Lohner, R. [1 ]
Putman, C. A. [2 ]
Cebral, J. R. [1 ]
机构
[1] George Mason Univ, Ctr Computat Fluid Dynam, Fairfax, VA 22030 USA
[2] Inova Fairfax Hosp, Falls Church, VA 22042 USA
关键词
computational fluid dynamics; adaptive embedded unstructured grids; cerebral aneurysms;
D O I
10.1002/fld.1590
中图分类号
TP39 [计算机的应用];
学科分类号
081203 [计算机应用技术]; 0835 [软件工程];
摘要
Recently, there has been increased interest in the use Of stents as flow diverters in the endovascular treatment of cerebral aneurysms as an alternative to surgical clipping or endovascular embolization with coils. The aim of aneurysm stenting is to block the flow into the aneurysm in order to clot the blood inside the aneurysm and effectively isolate it from the circulation and Prevent bleeding from the aneurysm. A hybrid meshing approach that combines body-fitted grids for the vessels and adaptive the stents is proposed and analyzed. This strategy simplifies considerably embedded grids for ably the geometry modeling problem and allows accurate patient-specific hemodynamic simulations with endovascular devices. This approach is compared with the traditional body-fitted approach in the case of the flow around a circular cylinder at representative Reynolds number and an idealized aneurysm model with a stent. A novel technique to map different stent designs to a given patient-specific anatomical model is presented. The methodology is demonstrated on a patient-specific hemodynamic model of an aneurysm of the internal carotid artery constructed from a 3D rotational angiogram and stented with two different stent designs. The results show that the methodology can be successfully used to model patient-specific anatomies with different stents thereby making it possible to explore different stent designs. Copyright (C) 2007 John Wiley & Sons, Ltd.
引用
收藏
页码:475 / 493
页数:19
相关论文
共 60 条
[1]
AFTOSMIS MJ, 2000, AIAA000808
[2]
[Anonymous], P INT C COMP BIOENG
[3]
Influence of stent properties on the alteration of cerebral intra-aneurysmal haemodynamics:: flow quantification in elastic sidewall aneurysm models [J].
Baráth, K ;
Cassot, F ;
Fasel, JHD ;
Ohta, M ;
Rüfenacht, DA .
NEUROLOGICAL RESEARCH, 2005, 27 :S120-S128
[4]
Castro MA, 2006, AM J NEURORADIOL, V27, P1703
[5]
Blood flow modeling in carotid arteries with computational fluid dynamics and MR imaging [J].
Cebral, JR ;
Yim, PJ ;
Löhner, R ;
Soto, O ;
Choyke, PL .
ACADEMIC RADIOLOGY, 2002, 9 (11) :1286-1299
[6]
Efficient pipeline for image-based patient-specific analysis of cerebral aneurysm hemodynamics: Technique and sensitivity [J].
Cebral, JR ;
Castro, MA ;
Appanaboyina, S ;
Putman, CM ;
Millan, D ;
Frangi, AF .
IEEE TRANSACTIONS ON MEDICAL IMAGING, 2005, 24 (04) :457-467
[7]
Cebral JR, 2004, 2004 2ND IEEE INTERNATIONAL SYMPOSIUM ON BIOMEDICAL IMAGING: MACRO TO NANO, VOLS 1 and 2, P944
[8]
Cebral JR, 2005, AM J NEURORADIOL, V26, P2550
[9]
Subject-specific modeling of intracranial aneurysms [J].
Cebral, JR ;
Henandez, M ;
Frangi, A ;
Putman, C ;
Pergolesi, R ;
Burgess, J .
MEDICAL IMAGING 2004: PHYSIOLOGY, FUNCTION, AND STRUCTURE FROM MEDICAL IMAGES, 2004, 5 (23) :319-327
[10]
Blood-flow models of the circle of Willis from magnetic resonance data [J].
Cebral, JR ;
Castro, MA ;
Soto, O ;
Löhner, R ;
Alperin, N .
JOURNAL OF ENGINEERING MATHEMATICS, 2003, 47 (3-4) :369-386