Publication | Open Access
A simple, stable, and accurate linear tetrahedral finite element for transient, nearly, and fully incompressible solid dynamics: a dynamic variational multiscale approach
116
Citations
100
References
2015
Year
Numerical AnalysisPiecewise LinearEngineeringSpurious Pressure OscillationsMechanical EngineeringStructural OptimizationComputational MechanicsStabilityNumerical SimulationNumerical StabilityBoundary Element MethodNonlinear ElasticityIncompressible Solid DynamicsSolid MechanicsNumerical Method For Partial Differential EquationFinite Element MethodFluid-structure InteractionContinuum ModelingStructural MechanicsMultiscale Modeling
Summary We propose a new approach for the stabilization of linear tetrahedral finite elements in the case of nearly incompressible transient solid dynamics computations. Our method is based on a mixed formulation, in which the momentum equation is complemented by a rate equation for the evolution of the pressure field, approximated with piecewise linear, continuous finite element functions. The pressure equation is stabilized to prevent spurious pressure oscillations in computations. Incidentally, it is also shown that many stabilized methods previously developed for the static case do not generalize easily to transient dynamics. Extensive tests in the context of linear and nonlinear elasticity are used to corroborate the claim that the proposed method is robust, stable, and accurate. Copyright © 2015 John Wiley & Sons, Ltd.
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