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Efficient Three-Dimensional Solution for Unstructured Grids Using Hamiltonian Paths and Strand Grids

机译:使用哈密顿路径和子线网格的非结构化网格的高效三维解决方案

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An approach for achieving line-structures in purely unstructured grids is presented in two-dimensions and three-dimensions. The method entails the identification of Hamiltonian paths created by quadrilateral subdivision of unstructured meshes to represent two distinct surface coordinate directions, and strand grids to represent the wall normal direction. High-order stencil-based discretization and approximate factorization methods are used to construct line-implicit inversion operators along the loops and strands. Efficient solvers are then formulated that exploit these structures to the predict aerodynamic flow over bodies. Steady subsonic and transonic flow over an airfoil, wing, sphere and the Robin helicopter fuselage are predicted using the developed solver and compared against known results to validate the proposed methodology. Various mesh smoothing techniques and their effects on the solution convergence histories using multiple reconstruction schemes are explored. Domain decomposition techniques using message passing interface are developed to allow for the execution of the mesh generator and solver on parallel systems to contain the computational cost. Efficiency comparisons of the Hamiltonian solver against establish structured solvers are performed for representative cases and it is shown that the developed methodology achieves the convergence and accuracy of structured solvers.
机译:在二维和三维中提出了一种在纯非结构化网格中实现线结构的方法。该方法需要识别由非结构化网格的四边形细分创建的汉密尔顿路径,以表示两个不同的表面坐标方向,并使用绞线网格表示壁法线方向。使用基于高阶模版的离散化和近似因式分解方法来构造沿环和链的线隐式反演算子。然后制定有效的求解器,以利用这些结构来预测车身上的空气动力学流动。使用开发的求解器预测机翼,机翼,球体和Robin直升机机身上稳定的亚音速和跨音速流动,并将其与已知结果进行比较,以验证所提出的方法。探索了多种网格平滑技术及其对使用多种重构方案的求解收敛历史的影响。开发了使用消息传递接口的域分解技术,以允许在并行系统上执行网格生成器和求解器以控制计算成本。对代表性案例进行了汉密尔顿解算器与已建立结构化解算器的效率比较,结果表明,所开发的方法可以达到结构化解算器的收敛性和准确性。

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