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Construction of a Unified Continuum/Kinetic Solver for Aerodynamic Problems

机译:空气动力学问题统一连续体/动力学解算器的构造

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摘要

We describe our progress toward the development of a unified flow solver (UFS) that can automatically separate nonequilibrium and near-equilibrium domains and switch between continuum and kinetic solvers to combine the efficiency of continuum models with the accuracy of kinetic models. Direct numerical solution of the Boltzmann transport equation is used in kinetic regions, whereas kinetic schemes of gas dynamics are used elsewhere. The efficiency and numerical stability of the UFS is attained by using similar computational techniques for the kinetic and continuum solvers and by employing intelligent domain decomposition algorithms. Different criteria for identifying kinetic and continuum areas and two different mechanisms of coupling Boltzmann and Euler solvers are explored. Solutions of test problems with small Knudsen number are presented to illustrate the capabilities of the UFS for different conditions. It is shown that the UFS can automatically introduce and remove kinetic patches to maximize the accuracy and efficiency of simulations. To our knowledge, this is the first attempt to use direct Boltzmann and continuum flow solvers for developing a hybrid code with solution adaptive domain decomposition.
机译:我们描述了我们在开发统一流求解器(UFS)方面的进展,该流程可以自动分离非平衡域和近似平衡域,并在连续和动力学求解器之间切换,以将连续模型的效率与动力学模型的准确性结合起来。玻尔兹曼输运方程的直接数值解用于动力学区域,而气体动力学的动力学方案则用于其他地方。 UFS的效率和数值稳定性是通过对动力学和连续体求解器使用类似的计算技术以及采用智能域分解算法来实现的。探讨了识别动力学和连续区域的不同标准以及耦合玻尔兹曼和欧拉求解器的两种不同机理。提出了具有小克努森数的测试问题的解决方案,以说明UFS在不同条件下的功能。结果表明,UFS可以自动引入和删除动力学补丁,以最大限度地提高模拟的准确性和效率。据我们所知,这是首次尝试使用直接玻耳兹曼和连续流求解器来开发具有解自适应域分解的混合代码。

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