1D drift-kinetic numerical model based on semi-implicit particle-in-cell method

IF 7.2 2区 物理与天体物理 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Computer Physics Communications Pub Date : 2024-07-10 DOI:10.1016/j.cpc.2024.109318
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Abstract

The paper presents a new one-dimensional drift-kinetic electrostatic model based on the particle-in-cell method and capable of simulating the processes of plasma heating and confinement in mirror traps. The most of particle and energy losses in these traps occur along the magnetic field lines. The key role in limiting these losses is played by the ambipolar electric potential which creates a potential barrier for electrons and significantly reduces the heat flux that, without this barrier, would go to wall due to the classical electron thermal conductivity. However, modeling the formation of such a potential on real spatial and temporal scales of experiments is a challenging problem, since it requires a detailed description of not only ion, but also electron kinetics. In this work, we propose to solve the problem of taking into account electron kinetic effects on the time scale of plasma confinement in a mirror trap using the particle-in-cell method adapted to the approximate drift-kinetic equations of plasma motion. Unlike other electrostatic particle-in-cell models, which use fully implicit schemes to solve the nonlinear system of Vlasov-Poisson and Vlasov-Ampere equations, we propose a semi-implicit approach. By analogy with the Energy Conserving Semi-Implicit Method (ECSIM), it allows for precise conservation of energy and reduces the procedure for finding the electric field to inverting a tridiagonal matrix without multiple nonlinear iterations. Such a model will be useful for simulating not only collisional losses of hot plasma in fusion experiments, but also for studying the features of creating cold starting plasma in mirror traps using plasma or electron guns.

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基于半隐式粒子入胞法的一维漂移动力学数值模型
本文介绍了一种基于粒子入室法的新型一维漂移动静电模型,该模型能够模拟镜面陷阱中的等离子体加热和束缚过程。这些陷阱中的大部分粒子和能量损失都是沿着磁场线发生的。在限制这些损耗方面起关键作用的是伏极电势,它为电子创建了一个势垒,并显著降低了热通量。然而,在实际实验的空间和时间尺度上模拟这种电势的形成是一个具有挑战性的问题,因为这不仅需要详细描述离子动力学,还需要详细描述电子动力学。在这项工作中,我们建议使用适应等离子体运动的近似漂移动力学方程的粒子入室法来解决在镜像阱中等离子体约束的时间尺度上考虑电子动力学效应的问题。其他静电粒子入室模型使用全隐式方案求解弗拉索夫-泊松方程和弗拉索夫-安培方程的非线性系统,与此不同,我们提出了一种半隐式方法。通过与能量守恒半隐式方法(ECSIM)进行类比,该方法可以实现精确的能量守恒,并将寻找电场的过程简化为倒转一个三对角矩阵,而无需多次非线性迭代。这种模型不仅有助于模拟核聚变实验中热等离子体的碰撞损耗,还有助于研究利用等离子体枪或电子枪在镜像陷阱中产生冷启动等离子体的特征。
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来源期刊
Computer Physics Communications
Computer Physics Communications 物理-计算机:跨学科应用
CiteScore
12.10
自引率
3.20%
发文量
287
审稿时长
5.3 months
期刊介绍: The focus of CPC is on contemporary computational methods and techniques and their implementation, the effectiveness of which will normally be evidenced by the author(s) within the context of a substantive problem in physics. Within this setting CPC publishes two types of paper. Computer Programs in Physics (CPiP) These papers describe significant computer programs to be archived in the CPC Program Library which is held in the Mendeley Data repository. The submitted software must be covered by an approved open source licence. Papers and associated computer programs that address a problem of contemporary interest in physics that cannot be solved by current software are particularly encouraged. Computational Physics Papers (CP) These are research papers in, but are not limited to, the following themes across computational physics and related disciplines. mathematical and numerical methods and algorithms; computational models including those associated with the design, control and analysis of experiments; and algebraic computation. Each will normally include software implementation and performance details. The software implementation should, ideally, be available via GitHub, Zenodo or an institutional repository.In addition, research papers on the impact of advanced computer architecture and special purpose computers on computing in the physical sciences and software topics related to, and of importance in, the physical sciences may be considered.
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