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Three-Dimensional Unsteady MHD Modeling of a Low-Current High-Voltage Nontransferred DC Plasma Torch Operating With Air

机译:空气操作的低电流高压不转移直流等离子炬的三维非稳态MHD建模

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We present, in this paper, the MHD modeling of a dc plasma torch operating with air under very peculiar high-voltage low-current conditions. The model developed is 3-D, is time dependent, and assumes local thermodynamic equilibrium (LTE). The study has been carried out considering an axial injection of air with flow rates varying in the range of 0.16–0.5 g/s and currents varying in the range of 300–600 mA. The numerical modeling has been developed using Code_Saturne, a computational fluid dynamics software developed by EDF R&D which is based on colocated finite volume. After a detailed description of the model, the results are presented, analyzed, and discussed. The influence of current and that of air flow rate over the arc characteristics are studied in terms of temperature, velocity, electrical potential, Joule heating, and arc root motion. Regarding numerical issues, the MHD modeling of low-current high-voltage arc discharge is particularly tricky since, below 1 A, the self-induced magnetic field becomes negligible and the convection effects induce a highly irregular and unstable motion of the arc column. However, despite these difficulties, the numerical model has been successfully implemented. Numerical results have shown good correlation and good trends with experimental ones despite a discrepancy which is probably due to the LTE assumption. The model gave fruitful and significant information on parameters that could hardly be obtained experimentally. This preliminary work is likely to open the way toward a better understanding of low-current arc discharges, which technologies are currently encountering an important development in many application fields.
机译:在本文中,我们介绍了在非常特殊的高压低电流条件下以空气操作的直流等离子炬的MHD模型。开发的模型是3-D的,与时间相关,并且假设局部热力学平衡(LTE)。考虑到轴向注入空气的流量在0.16-0.5 g / s的范围内变化,电流在300-600 mA的范围内变化进行了研究。数值模型是使用Code_Saturne开发的,Code_Saturne是由EDF R&D开发的计算流体动力学软件,基于共同定位的有限体积。在对该模型进行详细描述之后,将对结果进行展示,分析和讨论。从温度,速度,电势,焦耳热和电弧根运动方面研究了电流和空气流速对电弧特性的影响。关于数值问题,低电流高压电弧放电的MHD建模特别棘手,因为低于1 A时,自感应磁场变得微不足道,对流效应引起电弧柱高度不规则且不稳定的运动。但是,尽管有这些困难,但数值模型已成功实现。尽管存在差异,这可能是由于LTE假设造成的,但数值结果与实验值显示出良好的相关性和良好的趋势。该模型针对无法通过实验获得的参数给出了丰富而有意义的信息。这项初步工作可能会为更好地理解小电流电弧放电开辟道路,目前,该技术在许多应用领域中都面临着重要的发展。

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