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High-fidelity aerostructural optimization with integrated geometry parameterization and mesh movement

机译:具有集成几何参数化和网格运动的高保真空气结构优化

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This paper extends an integrated geometry parameterization and mesh movement strategy for aerodynamic shape optimization to high-fidelity aerostructural optimization based on steady analysis. This approach provides an analytical geometry representation while enabling efficient mesh movement even for very large shape changes, thus facilitating efficient and robust aerostructural optimization. The geometry parameterization methodology uses B-spline surface patches to describe the undeflected design and flying shapes with a compact yet flexible set of parameters. The geometries represented are therefore independent of the mesh used for the flow analysis, which is an important advantage to this approach. The geometry parameterization is integrated with an efficient and robust grid movement algorithm which operates on a set of B-spline volumes that parameterize and control the flow grid. A simple technique is introduced to translate the shape changes described by the geometry parameterization to the internal structure. A three-field formulation of the discrete aerostructural residual is adopted, coupling the mesh movement equations with the discretized three-dimensional inviscid flow equations, as well as a linear structural analysis. Gradients needed for optimization are computed with a three-field coupled adjoint approach. Capabilities of the framework are demonstrated via a number of applications involving substantial geometric changes.
机译:本文扩展了一种基于稳态分析的高保真空气结构优化的空气动力学优化的集成几何参数化和网格运动策略。该方法提供了分析几何形状,同时即使对于非常大的形状变化,也能够实现高效的网格运动,从而便于有效且坚固的气动结构优化。几何参数化方法使用B样条曲面贴片来描述具有紧凑又灵活的参数集的未定义的设计和飞行形状。因此,所代表的几何形状独立于用于流动分析的网,这是这种方法的重要优势。几何参数化与高效且坚固的网格运动算法集成在一起,该算法在一组B样张卷上进行参数化和控制流网格。引入简单的技术以将几何参数化描述的形状变化转换为内部结构。采用三场配方,采用离散的空腹残留,将网状运动方程与离散的三维活性流动方程耦合,以及线性结构分析。优化所需的梯度通过三场耦合伴随方法计算。通过涉及大量几何变化的许多应用来证明该框架的功能。

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