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EXAMAG: Towards Exascale Simulations of the Magnetic Universe

机译:EXAMAG:迈向磁性宇宙的百亿模拟

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Simulations of cosmic structure formation address multi-scale, multi-physics problems of vast proportions. These calculations are presently at the forefront of today's use of supercomputers, and are important scientific drivers for the future use of exaflop computing platforms. However, continued success in this field requires the development of new numerical methods that excel in accuracy, robustness, parallel scalability, and physical fidelity to the processes relevant in galaxy and star formation. In the EXAMAG project, we have worked on improving and applying the astrophysical moving-mesh code AREPO with the goal to extend its range of applicability. We have also worked on developing new, powerful high-order discontinuous Galerkin schemes for astrophysics, on more efficient solvers for gravity, and on improvements of the accuracy of the treatment of ideal magnetohydrodynamics. In this context, we have also studied the applied mathematics required for higher-order discretization on dynamically moving meshes, thereby providing the foundations for much more efficient and accurate methods than are presently in use. Finally, we have worked towards publicly releasing two major community codes, AREPO and GADGET-4, which represent the state-of-the-art in the field.
机译:宇宙结构形成的模拟解决了很大范围的多尺度,多物理问题。这些计算当前处于当今超级计算机使用的最前沿,并且是未来exaflop计算平台使用的重要科学驱动力。但是,要在该领域取得持续成功,就需要开发出新的数值方法,该方法在与星系和恒星形成有关的过程的准确性,鲁棒性,并行可扩展性和物理保真度方面表现优异。在EXAMAG项目中,我们致力于改进和应用天体移动网格代码AREPO,以扩展其适用范围。我们还致力于为天体物理学开发新的,功能强大的高阶不连续Galerkin方案,开发更有效的重力解算器,并提高理想磁流体动力学处理的精度。在这种情况下,我们还研究了在动态移动网格上进行高阶离散化所需的应用数学,从而为比目前使用的方法更加有效和准确的方法提供了基础。最后,我们努力公开发布了两个主要的社区代码AREPO和GADGET-4,它们代表了该领域的最新技术。

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