DocumentCode :
2288342
Title :
Parallel simulation and visualization of blood flow in intracranial aneurysms
Author :
Fenz, Wolfgang ; Dirnberger, Johannes ; Watzl, Christoph ; Krieger, Michael
Author_Institution :
Res. Unit Med. Inf., RISC Software GmbH, Hagenberg, Austria
fYear :
2010
fDate :
25-28 Oct. 2010
Firstpage :
153
Lastpage :
160
Abstract :
Our aim is to develop a physically correct simulation of blood flow through intracranial aneurysms. It shall provide means to estimate rupture risks by calculating the distribution of pressure and shear stresses in an intracranial aneurysm, in order to support the planning of clinical interventions. Due to the time-critical nature of the application, we are forced to use the most efficient state-of-the-art numerical methods and technologies together with high performance computing (HPC) infrastructures. The Navier-Stokes equations for the blood flow are discretized via the finite element method (FEM), and the resulting linear equation systems are handled by an algebraic multigrid (AMG) solver. First comparisons of our simulation results with commercial CFD (computational fluid dynamics) software already show good medical relevance for diagnostic decision support. Another challenge is the visualization of our simulation results at acceptable interaction response rates. Physicians require quick and highly interactive visualization of velocity, pressure and stress to be able to assess the rupture risk of an individual vessel morphology. To meet these demands, parallel visualization techniques and high performance computing resources are utilized. In order to provide physicians with access to remote HPC resources which are not available at every hospital, computing infrastructure of the Austrian Grid is utilized for simulation and visualization.
Keywords :
Navier-Stokes equations; blood vessels; computational fluid dynamics; data visualisation; diseases; finite element analysis; haemodynamics; medical diagnostic computing; Austrian Grid; CFD; Navier-Stokes equations; algebraic multigrid solver; blood flow; clinical interventions; computational fluid dynamics; diagnostic decision support; finite element method; high performance computing infrastructures; individual vessel morphology; intracranial aneurysms; linear equation systems; parallel simulation; parallel visualization; planning; pressure distribution; rupture risks; shear stresses; state-of-the-art numerical methods; time-critical nature; Aneurysm; Blood; Computational modeling; Data visualization; Equations; Mathematical model; Three dimensional displays; Computational Fluid Dynamics; Parallel PDE solver; Parallel Visualization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Grid Computing (GRID), 2010 11th IEEE/ACM International Conference on
Conference_Location :
Brussels
Print_ISBN :
978-1-4244-9347-0
Type :
conf
DOI :
10.1109/GRID.2010.5697965
Filename :
5697965
Link To Document :
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