Title :
An anisotropic fluid-solid model of the mouse heart
Author :
Carson, JP ; Kuprat, AP ; Jiao, X. ; Pin, F. del ; Einstein
Author_Institution :
Pacific Northwest Nat. Lab., Richland, WA, USA
Abstract :
A critical challenge in biomechanical simulations is the spatial discretization of complex fluid-solid geometries created from imaging. This is especially important when dealing with Lagrangian interfaces, as there must be at a minimum both geometric and topological compatibility between fluid and solid phases, with exact matching of the interfacial nodes being highly desirable. We have developed a solution to this problem and applied the approach to the creation of a 3D fluid-solid mesh of the mouse heart. First, a 50 micron isotropic MRI dataset of a perfusion-fixed mouse heart was segmented into blood, tissue, and background using a customized multimaterial connected fuzzy thresholding algorithm. Then, a multimaterial marching cubes algorithm was applied to produce two compatible isosurfaces, one for the blood-tissue boundary and one for the tissue-background boundary. A multimaterial smoothing algorithm that rigorously conserves volume for each phase simultaneously smoothed the isosurfaces. Next we applied novel automated meshing algorithms to generate anisotropic hybrid meshes with the number of layers and the desired element anisotropy for each material as the only input parameters. As the meshes are scale-invariant within a material and include boundary layer prisms, fluid-structure interaction computations would have a relative error equilibrated over the entire mesh. The resulting model is highly detailed mesh representation of the mouse heart, including features such as chordae and coronary vasculature, that is also maximally efficient to produce the best simulation results for the computational resources available.
Keywords :
Lagrangian field theory; biological tissues; biomechanics; biomedical MRI; blood; cardiology; fuzzy logic; image segmentation; medical image processing; mesh generation; physiological models; smoothing methods; 3D fluid-solid mesh; Lagrangian interfaces; anisotropic fluid-solid model; anisotropic hybrid meshes; automated meshing algorithms; biomechanical simulations; blood-tissue boundary; boundary layer prisms; chordae; complex fluid-solid geometries; coronary vasculature; customized multimaterial; fluid-structure interaction computations; fuzzy thresholding algorithm; image segmentation; micron isotropic MRI dataset; multimaterial marching cube algorithm; multimaterial smoothing algorithm; perfusion-fixed mouse heart; scale-invariant meshes; spatial discretization; tissue-background boundary; topological compatibility; Anisotropic magnetoresistance; Blood; Geometry; Heart; Isosurfaces; Lagrangian functions; Magnetic resonance imaging; Mice; Smoothing methods; Solid modeling;
Conference_Titel :
Computers in Cardiology, 2009
Conference_Location :
Park City, UT
Print_ISBN :
978-1-4244-7281-9
Electronic_ISBN :
0276-6547