论文标题

Jefipic:基于GPU的Jefimenko方程的3-D完整电磁粒子模拟器

JefiPIC: A 3-D Full Electromagnetic Particle-in-Cell Simulator Based on Jefimenko's Equations on GPU

论文作者

Chen, Jiannan, Zhang, Jun-Jie, Li, Xueming, Qiao, Hai-Liang, Zhao, Yongtao

论文摘要

本文介绍了一种新型的3-D完整电磁粒子中的电磁粒子(PIC)代码,称为Jefipic,该代码使用Jefimenko的方程式通过全空间集成方法将Jefimenko的方程式用作电磁(EM)现场求解器。利用最先进的图形处理单元(GPU)的力量,我们使PIC模拟的具有挑战性的积分任务可实现。我们提出的代码通过利用积分方法提供了几个优势。首先,它提供了一种自然解决方案,用于对非中性等离子体进行建模,而无需预处理,例如求解泊松方程。其次,它消除了设计精美的边界层吸收磁场和颗粒的要求。第三,无论选择的时间步骤如何,它都保持了等离子体模拟的稳定性。最后,它不需要严格的电荷保存粒子到网格分配技术或电场差异修正算法,这些算法通常用于有限差分时间域(FDTD)基于的PIC模拟。为了验证代码的准确性和优势,我们比较了其他三个代码模拟的不同等离子体系统中粒子和磁场的演变。我们的结果表明,Jefimenko方程和PIC方法的组合可以在开放式等离子体系统中产生准确的粒子分布和EM场。此外,我们的代码能够在可接受的执行时间内完成这些计算。这项研究强调了Jefipic的有效性和效率,显示了其推进血浆模拟的潜力。

This paper presents a novel 3-D full electromagnetic particle-in-cell (PIC) code called JefiPIC, which uses Jefimenko's equations as the electromagnetic (EM) field solver through a full-space integration method. Leveraging the power of state-of-the-art graphic processing units (GPUs), we have made the challenging integral task of PIC simulations achievable. Our proposed code offers several advantages by utilizing the integral method. Firstly, it offers a natural solution for modeling non-neutral plasmas without the need for pre-processing such as solving Poisson's equation. Secondly, it eliminates the requirement for designing elaborate boundary layers to absorb fields and particles. Thirdly, it maintains the stability of the plasma simulation regardless of the time step chosen. Lastly, it does not require strict charge-conservation particle-to-grid apportionment techniques or electric field divergence amendment algorithms, which are commonly used in finite-difference time-domain (FDTD)-based PIC simulations. To validate the accuracy and advantages of our code, we compared the evolutions of particles and fields in different plasma systems simulated by three other codes. Our results demonstrate that the combination of Jefimenko's equations and the PIC method can produce accurate particle distributions and EM fields in open-boundary plasma systems. Additionally, our code is able to accomplish these computations within an acceptable execution time. This study highlights the effectiveness and efficiency of JefiPIC, showing its potential for advancing plasma simulations.

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