Computation of Hemodynamics in the circle of Willis

被引:190
作者
Alnaes, Martin Sandve
Isaksen, Jorgen
Mardal, Kent-Andre
Romner, Bertil
Morgan, Michael K.
Ingebrigtsen, Tor [1 ]
机构
[1] Univ Hosp N Norway, Dept Neurosurg, N-9038 Tromso, Norway
[2] Simula Res Lab, Oslo, Norway
[3] Univ Tromso, Inst Clin Med, Dept Neurosurg, Tromso, Norway
[4] Rigshosp, Ctr Neurosci, Univ Clin Neurosurg, DK-2100 Copenhagen, Denmark
[5] Macquarie Univ, Sch Adv Med, Sydney, NSW 2109, Australia
关键词
aneurysm; computational fluid dynamics; circle of Willis; hemodynamics; wall shear stress;
D O I
10.1161/STROKEAHA.107.482471
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 - Wall shear stress (WSS) and pressure are important factors in the development of cerebral aneurysms. We aimed to develop a computational fluid dynamics simulator for flow in the complete circle of Willis to study the impact of variations in vessel radii and bifurcation angles on WSS and pressure on vessel walls. Methods - Blood flow was modeled with Navier-Stokes equations as an incompressible newtonian fluid within rigid vessel walls. A model of the circle of Willis geometry was approximated as a network of tubes around cubic curves. Pulsatile inlet flow rates and constant outlet pressure were used as boundary conditions. Results - The simulations confirmed that differences in vessel radii and asymmetric branch angles influence WSS magnitude and spatial distribution. High WSS occurred at locations where aneurysms are frequent and in anatomic variants known to be associated with an increased risk for aneurysm development. Conclusions - Computational fluid dynamics analysis can be applied to the complete circle of Willis and should be used to study the pathophysiology of this complex vascular structure, including risk factors for aneurysm development. Further development of the method should include simulations with flexible vessel walls.
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页码:2500 / 2505
页数:6
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