The influence of geometric imperfections in cardiovascular FSI simulations
DOI10.1016/j.camwa.2017.04.012zbMath1397.92146OpenAlexW2609413579MaRDI QIDQ1663831
Lars Radtke, Alexander Düster, Marcel König
Publication date: 24 August 2018
Published in: Computers \& Mathematics with Applications (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.camwa.2017.04.012
cardiovascular fluid-structure interactionsoft tissue materialend-to-end anastomosispartitioned solution approach
Finite element, Rayleigh-Ritz and Galerkin methods for boundary value problems involving PDEs (65N30) Physiological flows (76Z05) Physiological flow (92C35) Finite volume methods for boundary value problems involving PDEs (65N08)
Uses Software
Cites Work
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- Convergence acceleration for partitioned simulations of the fluid-structure interaction in arteries
- A partitioned solution approach for electro-thermo-mechanical problems
- Estimation of element-based zero-stress state for arterial FSI computations
- FSI analysis of the blood flow and geometrical characteristics in the thoracic aorta
- A flexible C++ framework for the partitioned solution of strongly coupled multifield problems
- Multi-solver algorithms for the partitioned simulation of fluid-structure interaction
- Artery active mechanical response: high order finite element implementation and investigation
- Fluid-structure interaction modeling of a patient-specific cerebral aneurysm: influence of structural modeling
- Influence of wall elasticity in patient-specific hemodynamic simulations
- Wall shear stress calculations in space-time finite element computation of arterial fluid-structure interactions
- Fluid-structure interaction II. Modelling, simulation, optimization. Selected papers based on the presentations at the first international workshop on computational engineering -- special topic fluid-structure interactions, Herrsching, Germany, October 2009.
- A coupled momentum method for modeling blood flow in three-dimensional deformable arteries
- Computational fluid-structure interaction: methods and application to a total cavopulmonary connection
- Analytical and computational assessment of locking in the \(hp\) finite element method
- Quasi-regional mapping for the \(p\)-version of the finite element method
- Computer modeling of cardiovascular fluid-structure interactions with the deforming-spatial-domain/stabilized space-time formulation
- Partitioned coupling strategies for multi-physically coupled radiative heat transfer problems
- On the one-dimensional theory of blood flow in the larger vessels
- The p‐version of the finite element method for three‐dimensional curved thin walled structures
- p -FEMs for hyperelastic anisotropic nearly incompressible materials under finite deformations with applications to arteries simulation
- ST and ALE-VMS methods for patient-specific cardiovascular fluid mechanics modeling
- Space-time finite element computation of arterial fluid-structure interactions with patient-specific data
- Arterial fluid mechanics modeling with the stabilized space–time fluid–structure interaction technique
- Fluid–structure interaction analysis of a patient‐specific right coronary artery with physiological velocity and pressure waveforms
- Mixed Finite Element Methods - Theory and Discretization
- Thep-Version of the Finite Element Method
- Isogeometric Analysis
- Locking Effects in the Finite Element Approximation of Plate Models
- Computational Fluid–Structure Interaction
- Modelling of fluid–structure interactions with the space–time finite elements: Arterial fluid mechanics
- On volumetric locking‐free behaviour of p‐version finite elements under finite deformations
- Coupling strategies for biomedical fluid–structure interaction problems
- A new constitutive framework for arterial wall mechanics and a comparative study of material models
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