A stable second-order scheme for fluid-structure interaction with strong added-mass effects
DOI10.1016/j.jcp.2014.04.020zbMath1349.76236OpenAlexW2052203118MaRDI QIDQ349229
Pardha S. Gurugubelli, Rajeev K. Jaiman, Jie Liu
Publication date: 5 December 2016
Published in: Journal of Computational Physics (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.jcp.2014.04.020
fluid-structure interactionsecond ordercombined field with explicit interfaceflapping dynamicslow mass density ratiostability proofstrong added-mass
Navier-Stokes equations for incompressible viscous fluids (76D05) Fluid-solid interactions (including aero- and hydro-elasticity, porosity, etc.) (74F10) Finite element methods applied to problems in solid mechanics (74S05) Finite element methods applied to problems in fluid mechanics (76M10) Finite element, Rayleigh-Ritz and Galerkin methods for initial value and initial-boundary value problems involving PDEs (65M60)
Related Items (22)
Cites Work
- Unnamed Item
- Unnamed Item
- Unnamed Item
- Transient fluid-structure interaction with non-matching spatial and temporal discretizations
- Efficient symmetric positive definite second-order accurate monolithic solver for fluid/solid interactions
- A symmetric positive definite formulation for monolithic fluid structure interaction
- Combined interface boundary condition method for unsteady fluid-structure interaction
- Open and traction boundary conditions for the incompressible Navier-Stokes equations
- Solvers for large-displacement fluid-structure interaction problems: Segregated versus monolithic approaches
- Stable and accurate pressure approximation for unsteady incompressible viscous flow
- A front-tracking method for viscous, incompressible multi-fluid flows
- A space-time Galerkin/least-squares finite element formulation of the Navier-Stokes equations for moving domain problems
- The relevance of conservation for stability and accuracy of numerical methods for fluid-structure interaction.
- Partitioned procedures for the transient solution of coupled aeroelastic problems. I: Model problem, theory and two-dimensional application.
- A monolithical fluid-structure interaction algorithm applied to the piston problem
- An arbitrary Lagrangian-Eulerian finite element method for transient dynamic fluid-structure interactions
- A level set approach to Eulerian--Lagrangian coupling.
- A fictitious domain method for external incompressible viscous flow modeled by Navier-Stokes equations
- Provably second-order time-accurate loosely-coupled solution algorithms for transient nonlinear computational aeroelasticity
- Algorithms for strong coupling procedures
- Added-mass effect in the design of partitioned algorithms for fluid--structure problems
- Projection method III: Spatial discretization on the staggered grid
- Simple and Efficient ALE Methods with Provable Temporal Accuracy up to Fifth Order for the Stokes Equations on Time Varying Domains
- A Coarsening Algorithm on Adaptive Grids by Newest Vertex Bisection and Its Applications
- The immersed boundary method
- Assessment of conservative load transfer for fluid-solid interface with non-matching meshes
- A Monolithic FEM/Multigrid Solver for an ALE Formulation of Fluid-Structure Interaction with Applications in Biomechanics
- A projection semi-implicit scheme for the coupling of an elastic structure with an incompressible fluid
- Immersed Interface Methods for Stokes Flow with Elastic Boundaries or Surface Tension
- Conservative Load Projection and Tracking for Fluid-Structure Problems
- Partitioned analysis of coupled mechanical systems
- Coupling and Eulerian fluid calculation to a Lagrangian solid calculation with the ghost fluid method.
This page was built for publication: A stable second-order scheme for fluid-structure interaction with strong added-mass effects