Incompressibility without tears—HOW to avoid restrictions of mixed formulation
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- Type
- article
- Published
- 1991-10-25
- Cited by
- 118
- References
- 10
- OpenAlex
- https://openalex.org/W2041005267
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:122233793
Keywords
Compressibility, Incompressible flow, Fluid mechanics, Pressure-correction method, Mathematics
References
- Finite element analysis of density flow using the velocity correction method
- Finite element Euler computations in three dimensions
- A Taylor–Galerkin method for convective transport problems
- A new finite element formulation for computational fluid dynamics: V. Circumventing the Babuscka-Brezzi condition: A stable Petrov-Galerkin formulation of
- Compressible and incompressible flow; an algorithm for all seasons
- Compressible viscous flow calculations using compatible finite element approximations
- The patch test for mixed formulations
- The patch test—a condition for assessing FEM convergence
- A Petrov–Galerkin formulation for the incompressible Navier–Stokes equations using equal order interpolation for velocity and pressure
- Approximate methods for solution of differential and integral equations
- Finite element analysis of incompressible fluid flow incorporating equal order pressure and velocity interpolation
Cited by
- Problems with Incompressibility in Finite Element Analysis
- Three-dimensional modelling of generalized Newtonian fluids in domains including obstructions
- Unstructured mesh based models for incompressible turbulent flows
- Two‐phase dynamic analysis by material point method
- DEVELOPMENT OF Q1 MIXED-INTERPOLATED DISPLACEMENT/VELOCITY ELEMENTS FOR SOLIDS AND FLUIDS
- Estabilización de la superfície libre en la solución de ecuaciones shallow -water por elementos finitos. Aplicaciones oceanográficas
- A new stabilized finite element formulation for scalar convection–diffusion problems: the streamline and approximate upwind/Petrov–Galerkin method
- Solving systems of partial differential equations using object-oriented programming techniques with coupled heat and fluid flow as example
- A full-scale numerical study of interfacial instabilities in thin-film flows
- Characteristic‐based‐split (CBS) algorithm for incompressible flow problems with heat transfer
- Finite element modelling of concentration profiles in flow domains with curved porous boundaries
- A new stabilized enhanced strain element with equal order of interpolation for soil consolidation problems
- Stabilized finite elements for harmonic soil dynamics problems near the undrained-incompressible limit
- A fractional four-step finite element formulation of the unsteady incompressible Navier-Stokes equations using SUPG and linear equal-order element methods
- A study of the backward‐facing step problem using a generalized streamline formulation
- An eulerian mixed formulation for viscoplastic materials
- On using linear elements in incompressible plane strain problems: a simple edge based approach for triangles
- Incompressible or nearly incompressible soil dynamic behaviour—a new staggered algorithm to circumvent restrictions of mixed formulation
- Investigation of combination of finite element formulation and element type on the accuracy of 3D modeling of polymeric fluid flow in an extrusion die
- A mixed displacement-pressure formulation for numerical analysis of plastic failure
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