LONGITUDINAL DC DISCHARGE IN A SUPERSONIC FLOW: NUMERICAL SIMULATION AND EXPERIMENTAL INVESTIGATION

A. Firsov, V. Bityurin, D. Tarasov, A. Dobrovolskaya, R. Troshkin, A. Bocharov
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引用次数: 7

Abstract

This work focuses on detailed descriptions of DC discharge properties in supersonic airflow and its applicability in combustion simulations. Due to the complexity of obtaining most of the data in the experiment, our experimental research was supplemented by a numerical simulation. Two packages, i.e., FlowVision (fast commercial CFD for 3D engineering) and Plasmaero (2D scientific code developed in JIHT RAS for MHD tasks), were used for modeling the arc DC discharge in a supersonic flow at Mach (M) = 2. Both will be considered for further use in plasma-assisted combustion modeling, so it is important to validate both codes using experimental data from the model configuration with discharge. Axisymmetric geometries of experiments with two coaxial electrodes located parallel to the flow were chosen to avoid the appearance of the current channel part perpendicular to the flow and the corresponding discharge pulsations. Such geometries allow performing numerical simulations in 2D formulation, making it possible to compare the results obtained in the experiments and calculations. As a result of this work, two-dimensional distributions involving temperature, current density, chemical composition, and other discharge and flow parameters were obtained for arc DC discharges 0.5–7 A in a supersonic flow (Pst = 22 kPa, T = 170 K, V~500 m/s). Good qualitative agreement between experimental and numerical results was achieved. The production of a significant amount of atomic oxygen, which accelerates combustion, was noted.
超声速流动中的纵向直流放电:数值模拟与实验研究
本文重点研究了超声速气流直流放电特性及其在燃烧模拟中的适用性。由于实验中大部分数据的获取比较复杂,我们的实验研究以数值模拟作为补充。使用FlowVision(用于3D工程的快速商用CFD)和Plasmaero(在JIHT RAS中开发的用于MHD任务的2D科学代码)两个软件包对Mach (M) = 2的超音速流动中的电弧直流放电进行建模。两者都将被考虑进一步用于等离子体辅助燃烧建模,因此使用带有放电的模型配置的实验数据来验证这两个代码是很重要的。为了避免出现垂直于流动的电流通道部分和相应的放电脉动,实验中选择了平行于流动的两个同轴电极的轴对称几何形状。这样的几何形状允许在二维公式中进行数值模拟,从而可以比较实验和计算中获得的结果。得到了0.5 ~ 7 a电弧直流超声速放电(Pst = 22 kPa, T = 170 K, V~500 m/s)的温度、电流密度、化学成分及其他放电和流动参数的二维分布。实验结果与数值结果具有很好的定性一致性。人们注意到,大量氧原子的产生加速了燃烧。
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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