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首页> 外文期刊>International journal of numerical methods for heat & fluid flow >A finite element solver for hypersonic flows in thermo- chemical non-equilibrium, Part Ⅱ
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A finite element solver for hypersonic flows in thermo- chemical non-equilibrium, Part Ⅱ

机译:用于热化学非平衡中的过度高音流量的有限元求解器,第Ⅱ部分

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Purpose - This work aims to describe the physical and numerical modeling of a CFD solver for hypersonic flows in thermo-chemical non-equilibrium. This paper is the second of a two-part series that concerns the application of the solver introduced in Part I to adaptive unstructured meshes. Design/methodology/approach - The governing equations are discretized with an edge-based stabilized finite element method (FEM). Chemical non-equilibrium is simulated using a laminar finite-rate kinetics, while a two-temperature model is used to account for thermodynamic non-equilibrium. The equations for total quantities, species and vibrational-electronic energy conservation are loosely coupled to provide flexibility and ease of implementation. To accurately perform simulations on unstructured meshes, the non-equilibrium flow solver is coupled with an edge-based anisotropic mesh optimizer driven by the solution Hessian to carry out mesh refinement, coarsening, edge swapping and node movement. Findings - The paper shows, through comparisons with experimental and other numerical results, how FEM + anisotropic mesh optimization are the natural choice to accurately simulate hypersonic non-equilibrium flows on unstructured meshes. Three-dimensional test cases demonstrate how, for high-speed flows, shocks resolution, and not necessarily boundary layers resolution, is the main driver of solution accuracy at walls. Equally distributing the error among all elements in a suitably defined Riemannian space yields highly anisotropic grids that feature well-resolved shock waves. The resulting high level of accuracy in the computation of the enthalpy jump translates into accurate wall heat flux predictions. At the opposite end, in all cases examined, high-quality but isotropic unstructured meshes gave very poor solutions with severely inadequate heat flux distributions not even featuring expected symmetries. The paper unequivocally demonstrates that unstructured anisotropically adapted meshes are the best, and may be the only, way for accurate and cost-effective hypersonic flow solutions. Originality/value - Although many hypersonic flow solvers are developed for unstructured meshes, few numerical simulations on unstructured meshes are presented in the literature. This work demonstrates that the proposed approach can be used successfully for hypersonic flows on unstructured meshes.
机译:目的 - 这项工作旨在描述热化学非平衡中高效流动的CFD求解器的物理和数值模型。本文是两部分系列中的第二个,涉及在第二部分中介绍的求解器应用于自适应非结构​​化网格。设计/方法/方法 - 控制方程与边缘稳定的有限元方法(FEM)离散化。使用层状有限速率动力学模拟化学非平衡,而两个温度模型用于考虑热力学非平衡。总量,物种和振动 - 电子节能的方程松散地连接,以提供灵活性和易于实现。为了在非结构化网格上准确地执行模拟,非平衡流量求解器与由Hessian驱动的基于边缘的各向异性网格优化器耦合,以执行网眼细化,粗化,边缘交换和节点运动。研究结果 - 本文通过比较实验和其他数值结果,FEAR +各向异性网格优化是如何准确模拟非结构化网格上的高超均衡流的自然选择。三维测试用例展示如何为高速流动,冲击分辨率和不一定是边界层分辨率,是墙壁溶液精度的主要驱动器。在适当定义的Riemannian空间中的所有元件中同样地分布误差产生高度各向异性网格,其具有解析良好的冲击波。在焓跳转计算中产生的高度精度转化为精确的壁热通量预测。在另一端,在所有情况下,在所有情况下,高质量但各向同性的非结构化网格都会产生非常差的解决方案,而且具有严重不足的热量分布,甚至具有预期的对称性。本文明确地证明了非结构化的各向异性适应网格是最好的,并且可以是准确且经济高效的超声波溶液的唯一方式。原创性/值 - 尽管为非结构化网格开发了许多超声波流量求解器,但文献中提出了非结构化网眼的数值模拟。这项工作表明,所提出的方法可以成功用于非结构化网格上的超声波流量。

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