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- W2322131427 abstract "A dynamic adaptation algorithm has been implemented within a streamline/upwind Petrov-Galerkin (SUPG) finite-element method. The proposed adaptation is able to perform multi-level h-, p-, and hp-refinement/derefinement and can be utilized within any continuous Galerkin formulation. To consistently account for hanging nodes, constrained approximation method is utilized. To demonstrate the developed methodology, the Euler and Reynolds Average NavierStokes (RANS) equations, equipped with a modified Spalart-Allmaras (SA) turbulence model, are used. A fully implicit linearization is used to advance each iteration or time-step, for steady-state or unsteady simulations, respectively. Adjoint-based and feature-based adaptations are employed in several numerical examples to assess the capability of the current approach. These examples include the comparison of adjoint-based h-, p-, and hp-adaptation for steady inviscid flow over a four element airfoil, adjoint-based h-adaptation for steady turbulent flow over a three element airfoil, and dynamic feature-based hand p-adaptation for laminar flow over a cylinder. Results illustrate consistent accuracy improvement of the functional outputs and also capability enhancement in capturing typical viscous effects such as flow separation, vortex shedding, and turbulent flow structures." @default.
- W2322131427 created "2016-06-24" @default.
- W2322131427 creator A5001455445 @default.
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- W2322131427 date "2014-06-13" @default.
- W2322131427 modified "2023-10-14" @default.
- W2322131427 title "High-Order Finite-Element Method and Dynamic Adaptation for Two-Dimensional Laminar and Turbulent Navier-Stokes" @default.
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- W2322131427 doi "https://doi.org/10.2514/6.2014-2983" @default.
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