A Geometrical-Characteristics Study in Patient-Specific FSI Analysis of Blood Flow in the Thoracic Aorta
DOI10.1007/978-3-319-40827-9_29zbMath1356.76471OpenAlexW2529706816MaRDI QIDQ2962472
Viet Q. H. Huynh, Hiroshi Suito, Daniel Sze, Takuya Ueda, Kenji Takizawa, Tayfun E. Tezduyar
Publication date: 16 February 2017
Published in: Advances in Computational Fluid-Structure Interaction and Flow Simulation (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1007/978-3-319-40827-9_29
Fluid-solid interactions (including aero- and hydro-elasticity, porosity, etc.) (74F10) Biomechanics (92C10) Biomechanical solid mechanics (74L15) Physiological flows (76Z05)
Related Items (32)
Cites Work
- Engineering analysis and design with ALE-VMS and space-time methods
- Space-time interface-tracking with topology change (ST-TC)
- Space-time fluid mechanics computation of heart valve models
- FSI analysis of the blood flow and geometrical characteristics in the thoracic aorta
- Space-time and ALE-VMS techniques for patient-specific cardiovascular fluid-structure interaction modeling
- Multiscale space-time fluid-structure interaction techniques
- Variational multiscale residual-based turbulence modeling for large eddy simulation of incompressible flows
- Multiscale sequentially-coupled arterial FSI technique
- Sequentially-coupled arterial fluid-structure interaction (SCAFSI) technique
- A new strategy for finite element computations involving moving boundaries and interfaces --- The deforming-spatial-domain/space-time procedure. I: The concept and the preliminary numerical tests
- A new strategy for finite element computations involving moving boundaries and interfaces --- The deforming-spatial-domain/space-time procedure. II: Computation of free-surface flows, two-liquid flows, and flows with drifting cylinders
- Mesh update strategies in parallel finite element computations of flow problems with moving boundaries and interfaces
- Space-time techniques for computational aerodynamics modeling of flapping wings of an actual locust
- Fluid-structure interaction modeling of clusters of spacecraft parachutes with modified geometric porosity
- Multiscale phenomena: Green's functions, the Dirichlet-to-Neumann formulation, subgrid scale models, bubbles and the origins of stabilized methods
- Space-time fluid-structure interaction modeling of patient-specific cerebral aneurysms
- SPACE–TIME FLUID–STRUCTURE INTERACTION METHODS
- ST and ALE-VMS methods for patient-specific cardiovascular fluid mechanics modeling
- Arterial fluid mechanics modeling with the stabilized space–time fluid–structure interaction technique
- Stabilized Finite Element Formulations for Incompressible Flow Computations
- Computation of moving boundaries and interfaces and stabilization parameters
- Computational Fluid–Structure Interaction
- Modelling of fluid–structure interactions with the space–time finite elements: Solution techniques
- Finite element methods for flow problems with moving boundaries and interfaces
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