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激光驱动快点火的集成模拟方法。

Integrated simulation approach for laser-driven fast ignition.

作者信息

Wang W-M, Gibbon P, Sheng Z-M, Li Y-T

机构信息

Forschungszentrum Jülich GmbH, Institute for Advanced Simulation, Jülich Supercomputing Centre, D-52425 Jülich, Germany and Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, CAS, Beijing 100190, China and IFSA Collaborative Innovation Center, Shanghai Jiao Tong University, Shanghai 200240, China.

Forschungszentrum Jülich GmbH, Institute for Advanced Simulation, Jülich Supercomputing Centre, D-52425 Jülich, Germany.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2015 Jan;91(1):013101. doi: 10.1103/PhysRevE.91.013101. Epub 2015 Jan 7.

Abstract

An integrated simulation approach fully based on the particle-in-cell (PIC) model is proposed, which involves both fast-particle generation via laser solid-density plasma interaction and transport and energy deposition of the particles in extremely high-density plasma. It is realized by introducing two independent systems in a simulation, where the fast-particle generation is simulated by a full PIC system and the transport and energy deposition computed by a second PIC system with a reduced field solver. Data of the fast particles generated in the full PIC system are copied to the reduced PIC system in real time as the fast-particle source. Unlike a two-region approach, which takes a single PIC system and two field solvers in two plasma density regions, respectively, the present one need not match the field solvers since the reduced field solver and the full solver adopted respectively in the two systems are independent. A simulation case is presented, which demonstrates that this approach can be applied to integrated simulation of fast ignition with real target densities, e.g., 300 g/cm(3).

摘要

提出了一种完全基于粒子模拟(PIC)模型的集成模拟方法,该方法涉及通过激光与固体密度等离子体相互作用产生快粒子,以及这些粒子在极高密度等离子体中的输运和能量沉积。这是通过在模拟中引入两个独立的系统来实现的,其中快粒子的产生由一个完整的PIC系统模拟,而输运和能量沉积则由第二个带有简化场求解器的PIC系统计算。在完整PIC系统中产生的快粒子数据作为快粒子源实时复制到简化PIC系统中。与双区域方法不同,双区域方法在两个等离子体密度区域分别采用单个PIC系统和两个场求解器,而本方法不需要匹配场求解器,因为两个系统中分别采用的简化场求解器和完整求解器是相互独立的。给出了一个模拟案例,表明该方法可应用于具有实际靶密度(如300 g/cm³)的快点火集成模拟。

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