论文标题

连续动力学研究偏差电位对当前饱和度的影响对鞘形成的影响

Continuum kinetic investigation of the impact of bias potentials in the current saturation regime on sheath formation

论文作者

Skolar, Chirag R., Bradshaw, Kolter, Juno, James, Srinivasan, Bhuvana

论文摘要

在这项工作中,我们检查了脉冲功率融合实验的当前饱和度方案中偏置电位的存在。重要的是要了解壁上的粒子和热通量如何影响壁物质并影响电极降解。使用1x-1V玻尔兹曼 - 波森系统对质子电子等离子体进行仿真,在存在范围为0到10 kV的偏差的情况下。结果表明,高电势壁附近的鞘通常与经典鞘的相同,而没有偏置电位。然而,随着较大的电势下降,电子密度的显着降低以及较大的护套长度,低电势壁附近的鞘变得更加突出。空间恒定电流密度随着偏置电位的增加而增加到饱和值。电流在低电势壁和高电位壁处的电子处于离子的主导。热通量在高电势壁上增加到饱和值,并且在低电位壁上倾向于零,并且偏置势的增加。理论的结果趋势与理论中的简化假设以及模拟中考虑的动力学效应。由于解决良好的1x-2V仿真的计算成本显着,仅对显示较高电流的5 kV情况进行了一个这样的模拟。

In this work, we examine sheath formation in the presence of bias potentials in the current saturation regime for pulsed power fusion experiments. It is important to understand how the particle and heat fluxes at the wall may impact the wall material and affect electrode degradation. Simulations are performed using the 1X-1V Boltzmann-Poisson system for a proton-electron plasma in the presence of bias potentials ranging from 0 to 10 kV. The results indicate that the sheath near the high potential wall remains generally the same as that of a classical sheath without the presence of a bias potential. However, the sheath near the low potential wall becomes more prominent with a larger potential drop, a significant decrease of electron density, and larger sheath lengths. The spatially constant current density increases to a saturation value with increasing bias potential. The current is dominated by the ions at the low potential wall and by the electrons at the high potential wall. The heat flux increases to a saturation value at the high potential wall and tends to zero at the low potential wall with increasing bias potential. The results trend with theory with differences attributed to the simplified assumptions in the theory and the kinetic effects considered in the simulations. Due to the significant computational cost of a well resolved 1X-2V simulation, only one such simulation is performed for the 5 kV case showing higher current.

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