Determination of Wall Tension in Cerebral Artery Aneurysms by Numerical Simulation

被引:137
作者
Isaksen, Jorgen Gjernes [1 ,2 ,3 ]
Bazilevs, Yuri [4 ]
Kvamsdal, Trond
Zhang, Yongjie [5 ]
Kaspersen, Jon H. [6 ]
Waterloo, Knut [1 ,2 ,3 ]
Romner, Bertil [1 ,2 ,3 ,7 ]
Ingebrigtsen, Tor [1 ,2 ,3 ]
机构
[1] Univ Hosp N Norway, Dept Neurosurg, N-9038 Tromso, Norway
[2] Univ Hosp N Norway, Dept Neurol, N-9038 Tromso, Norway
[3] Univ Tromso, Inst Clin Med, N-9001 Tromso, Norway
[4] Univ Texas Austin, Inst Computat Engn & Sci, Austin, TX 78712 USA
[5] Carnegie Mellon Univ, Dept Mech Engn, Pittsburgh, PA 15213 USA
[6] SINTEF Hlth Res, Dept Med Technol, Trondheim, Norway
[7] Rigshosp Univ Hosp, Dept Clin Neurosci & Neurosurg, Copenhagen, Denmark
关键词
computer assisted numerical analysis; intracranial aneurysm; risk; rupture; tension;
D O I
10.1161/STROKEAHA.107.503698
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Background and Purpose-Cerebral artery aneurysms rupture when wall tension exceeds the strength of the wall tissue. At present, risk-assessment of unruptured aneurysms does not include evaluation of the lesions shape, yet clinical experience suggests that this is of importance. We aimed to develop a computational model for simulation of fluid-structure interaction in cerebral aneurysms based on patient specific lesion geometry, with special emphasis on wall tension. Methods-An advanced isogeometric fluid-structure analysis model incorporating flexible aneurysm wall based on patient specific computed tomography angiogram images was developed. Variables used in the simulation model were retrieved from a literature review. Results-The simulation results exposed areas of high wall tension and wall displacement located where aneurysms usually rupture. Conclusion-We suggest that analyzing wall tension and wall displacement in cerebral aneurysms by numeric simulation could be developed into a novel method for individualized prediction of rupture risk. (Stroke. 2008;39:3172-3178.)
引用
收藏
页码:3172 / 3178
页数:7
相关论文
共 47 条
[1]   NON-INVASIVE TRANSCRANIAL DOPPLER ULTRASOUND RECORDING OF FLOW VELOCITY IN BASAL CEREBRAL-ARTERIES [J].
AASLID, R ;
MARKWALDER, TM ;
NORNES, H .
JOURNAL OF NEUROSURGERY, 1982, 57 (06) :769-774
[2]  
Acevedo-Bolton G, 2006, NEUROSURGERY, V59, P429
[3]   Computation of Hemodynamics in the circle of Willis [J].
Alnaes, Martin Sandve ;
Isaksen, Jorgen ;
Mardal, Kent-Andre ;
Romner, Bertil ;
Morgan, Michael K. ;
Ingebrigtsen, Tor .
STROKE, 2007, 38 (09) :2500-2505
[4]  
[Anonymous], 1984, J CLIN PATHOL, V37, P1147
[5]   CONTROLLED PRESSURE-VOLUME FACTORS IN THE ENLARGEMENT OF INTRACRANIAL ANEURYSMS [J].
AUSTIN, GM ;
WILLIAMS, R ;
SCHIEVINK, W .
NEUROSURGERY, 1989, 24 (05) :722-730
[6]   Isogeometric fluid-structure interaction analysis with applications to arterial blood flow [J].
Bazilevs, Y. ;
Calo, V. M. ;
Zhang, Y. ;
Hughes, T. J. R. .
COMPUTATIONAL MECHANICS, 2006, 38 (4-5) :310-322
[7]  
Castro MA, 2006, AM J NEURORADIOL, V27, P1703
[8]  
Cebral JR, 2005, AM J NEURORADIOL, V26, P2550
[9]   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
[10]   A TIME INTEGRATION ALGORITHM FOR STRUCTURAL DYNAMICS WITH IMPROVED NUMERICAL DISSIPATION - THE GENERALIZED-ALPHA METHOD [J].
CHUNG, J ;
HULBERT, GM .
JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 1993, 60 (02) :371-375