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Development of multi-hierarchy simulation model with non-uniform space grids for collisionless driven reconnection

机译:用于非碰撞驱动的重新连接的具有非均匀空间网格的多层次仿真模型的开发

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摘要

A multi-hierarchy simulation model aimed at magnetic reconnection studies has been developed, in which macroscopic and microscopic physics are solved self-consistently and simultaneously. In this work, the previous multi-hierarchy model by these authors is extended to a more realistic one with non-uniform space grids. Based on the domain decomposition method, the multi-hierarchy model consists of three parts: a magnetohydrodynamics algorithm to express the macroscopic global dynamics, a particle-in-cell algorithm to describe the microscopic kinetic physics, and an interface algorithm to interlock macro and micro hierarchies. For its verification, plasma flow injection is simulated in this multi-hierarchy model and it is confirmed that the interlocking method can describe the correct physics. Furthermore, this model is applied to collisionless driven reconnection in an open system. Magnetic reconnection is found to occur in a micro hierarchy by injecting plasma from a macro hierarchy.
机译:建立了针对磁重连接研究的多层次仿真模型,在该模型中,宏观和微观物理学可以自洽地同时解决。在这项工作中,这些作者先前的多层次模型被扩展为具有非均匀空间网格的更现实的模型。基于域分解方法,多层次模型由三部分组成:表示宏观全局动力学的磁流体动力学算法,描述微观动力学物理的粒子内算法以及将宏观与微观互锁的接口算法。层次结构。为了验证这一点,在此多层次模型中模拟了等离子体流注入,并确认了联锁方法可以描述正确的物理场。此外,该模型适用于开放系统中的无冲突驱动重新连接。通过从宏观层次注入等离子体,发现在微观层次上发生了磁重连。

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