On fundamental inconsistencies in a commonly used modification of a fluid model for glow discharge

Chen Zhou, Ismail Rafatov, Ying Wang, Anatoly Kudryavtsev, Chengxun Yuan, Jingfeng Yao and Zhongxiang Zhou
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Abstract

This work considers the fundamental contradictions in the concept of one of the most well-known and widely used modifications of the fluid model for simulation of a glow discharge (GD), the ‘local mean energy approximation’ (LMEA). In this model, it is proposed to determine the kinetic coefficients in the electron particle and energy balance equations as functions of the electron mean energy (temperature) rather than local electric field, using a one-to-one correspondence between these parameters through the electron Boltzmann equation. It is shown that the scope of applicability of this model, like any other modification of the fluid model, is limited by the local mode of formation of the electron energy distribution function (EEDF). Therefore, as demonstrated by the examples of typical 1D and 2D problems for a GD in argon, its extension to the region of nonlocal EEDF is in no way justified and leads not only to serious errors in the results, but also to a logically intractable situation in attempts to apply the main postulate of the LMEA model to the region of a weak (or even reverse) electric field in a negative glow plasma. At the same time, the apparent reliability of calculations within the framework of the LMEA model for a number of parameters, in our opinion, only slows down progress in modeling of gas discharge plasma.
关于辉光放电流体模型常用修正中的基本不一致之处
本研究探讨了辉光放电(GD)模拟流体模型中最著名、应用最广泛的修改概念之一--"局部平均能量近似"(LMEA)中的基本矛盾。在该模型中,建议将电子粒子和能量平衡方程中的动能系数确定为电子平均能量(温度)而非局部电场的函数,并通过电子玻尔兹曼方程将这些参数一一对应。研究表明,与流体模型的其他修改一样,该模型的适用范围受到电子能量分布函数(EEDF)的局部形成模式的限制。因此,正如氩气中 GD 的典型一维和二维问题实例所证明的那样,将其扩展到非局部 EEDF 区域是不合理的,不仅会导致结果出现严重错误,而且在尝试将 LMEA 模型的主要假设应用于负辉光等离子体中的弱电场(甚至反向电场)区域时,也会出现逻辑上难以解决的情况。同时,我们认为,在 LMEA 模型框架内对一些参数进行计算的明显可靠性只会减缓气体放电等离子体建模的进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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