科技报告详细信息
Design of a Modular Monolithic Implicit Solver for Multi-Physics Applications
Carton De Wiart, Corentin ; Diosady, Laslo T ; Garai, Anirban ; Burgess, Nicholas ; Blonigan, Patrick ; Ekelschot, Dirk ; Murman, Scott M
关键词: SPACE-TIME FUNCTIONS;    FINITE ELEMENT METHOD;    GALERKIN METHOD;    COMPUTERIZED SIMULATION;    COMPUTATIONAL FLUID DYNAMICS;    TANGENTS;    MULTIDISCIPLINARY DESIGN OPTIMIZATION;    SPACE CAPSULES;    PARACHUTES;    NAVIER-STOKES EQUATION;    ERROR ANALYSIS;    SENSITIVITY ANALYSIS;    LINEAR EQUATIONS;   
RP-ID  :  AIAA Paper 2018-1400,ARC-E-DAA-TN50876
学科分类:航空航天科学
美国|英语
来源: NASA Technical Reports Server
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【 摘 要 】

The design of a modular multi-physics high-order space-time finite-element framework is presented together with its extension to allow monolithic coupling of different physics. One of the main objectives of the framework is to perform efficient high- fidelity simulations of capsule/parachute systems. This problem requires simulating multiple physics including, but not limited to, the compressible Navier-Stokes equations, the dynamics of a moving body with mesh deformations and adaptation, the linear shell equations, non-re effective boundary conditions and wall modeling. The solver is based on high-order space-time - finite element methods. Continuous, discontinuous and C1-discontinuous Galerkin methods are implemented, allowing one to discretize various physical models. Tangent and adjoint sensitivity analysis are also targeted in order to conduct gradient-based optimization, error estimation, mesh adaptation, and flow control, adding another layer of complexity to the framework. The decisions made to tackle these challenges are presented. The discussion focuses first on the "single-physics" solver and later on its extension to the monolithic coupling of different physics. The implementation of different physics modules, relevant to the capsule/parachute system, are also presented. Finally, examples of coupled computations are presented, paving the way to the simulation of the full capsule/parachute system.

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