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Practical considerations for modeling streamer discharges in air with radiation transport

机译:用辐射运输在空气中建模飘带放电的实践考虑因素

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摘要

Two basic challenges limiting the simulation capabilities of the streamer discharge community are the efficient resolution of Poisson's equation and the proper treatment of photoionization. This paper addresses both of these challenges, beginning with a graphics processing unit executed multigrid (MG) algorithm to efficiently solve Poisson's equation on a massively parallel platform. When utilized in a 3D particle-in-cell (PIC) model with radiation transport, the MG solver is demonstrated to reduce the required simulation time by approximately a factor of three over a conventional Jacobi scheme. Next, a fully theoretical photoionization model, based on the basic properties of N_2 and O_2 molecules is developed as an alternative to widely utilized semi-empirical models. Following a review of N_2 emission properties, a total of eight transitions from only three excited states are reported as a base set of transitions for a practical physicsbased photoionization model. A 3D PIC simulation of streamer formation is demonstrated with two dominant transitions included in the radiation transport model.
机译:限制拖缆放电界的模拟能力的两个基本挑战是泊松方程的有效分辨率和光相处理的正确处理。本文讨论了这两个挑战,从图形处理单元执行的MultiGrid(MG)算法开始,以便在大规模平行平台上有效地解决泊松等方程。当利用辐射传输的3D粒子内(PIC)模型时,MG求解器被证明以通过传统的Jacobi方案将所需的模拟时间减少大约三倍。接下来,基于N_2和O_2分子的基本性质的完全理论的光离子化模型作为广泛利用半经验模型的替代方案。在审查N_2发射特性之后,仅报告了仅来自三个激发态的八个过渡作为实际物理基础的光离子化模型的基本转换。通过辐射传输模型中包括两个显性转换,对拖缆形成的3D图片模拟。

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