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Vlasov methods in space physics and astrophysics

机译:弗拉索夫空间物理学和天体物理学中的方法

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摘要

This paper reviews Vlasov-based numerical methods used to model plasma in space physics and astrophysics. Plasma consists of collectively behaving charged particles that form the major part of baryonic matter in the Universe. Many concepts ranging from our own planetary environment to the Solar system and beyond can be understood in terms of kinetic plasma physics, represented by the Vlasov equation. We introduce the physical basis for the Vlasov system, and then outline the associated numerical methods that are typically used. A particular application of the Vlasov system is Vlasiator, the world’s first global hybrid-Vlasov simulation for the Earth’s magnetic domain, the magnetosphere. We introduce the design strategies for Vlasiator and outline its numerical concepts ranging from solvers to coupling schemes. We review Vlasiator’s parallelisation methods and introduce the used high-performance computing (HPC) techniques. A short review of verification, validation and physical results is included. The purpose of the paper is to present the Vlasov system and introduce an example implementation, and to illustrate that even with massive computational challenges, an accurate description of physics can be rewarding in itself and significantly advance our understanding. Upcoming supercomputing resources are making similar efforts feasible in other fields as well, making our design options relevant for others facing similar challenges.
机译:本文回顾了基于Vlasov的数值方法,用于在空间物理学和天体物理学中对等离子体进行建模。等离子体由具有共同行为的带电粒子组成,这些粒子构成了宇宙中重子物质的主要部分。从我们自己的行星环境到太阳系乃至更广阔的范围,许多概念都可以用动力学等离子体物理学来理解,由弗拉索夫方程表示。我们介绍了Vlasov系统的物理基础,然后概述了通常使用的关联数值方法。 Vlasiator系统是Vlasov系统的一个特殊应用,Vlasiator是世界上第一个针对地球磁畴,磁层的全球混合Vlasov模拟。我们介绍了Vlasiator的设计策略,并概述了从求解器到耦合方案的数值概念。我们将回顾Vlasiator的并行化方法,并介绍使用的高性能计算(HPC)技术。包括对验证,确认和物理结果的简短回顾。本文的目的是介绍Vlasov系统并介绍一个示例实现,并说明即使面临巨大的计算挑战,对物理学的准确描述本身也会有所收获,并极大地增进了我们的理解。即将到来的超级计算资源也在其他领域使类似的工作变得可行,这使我们的设计选项与面临类似挑战的其他领域相关。

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