多物理
材料科学
介质阻挡放电
氩
等离子体
大气压力
电介质
原子物理学
喷射(流体)
辉光放电
电弧
等离子体驱动器
电压
电极
大气压等离子体
机械
光电子学
有限元法
化学
物理
热力学
物理化学
气象学
量子力学
作者
G. Divya Deepak,N. K. Joshi,Ram Prakash
标识
DOI:10.1017/s0263034620000294
摘要
Abstract In this study, an atmospheric pressure dielectric barrier discharge-based argon plasma jet has been modeled using COMSOL Multiphysics, which is based on the finite element method. The fluid dynamics and plasma modules of COMSOL Multiphysics code have been used for the modeling of the plasma jet. The plasma parameters, such as electron density, electron temperature, and electrical potential, have been examined by varying the electrical parameters, that is, supply voltage and supply frequency for both cases of static and with the flow of argon gas. The argon gas flow rate was fixed at 1 l/min. Ring electrode arrangement is subjected to a range of supply frequencies (10–25 kHz) and supply voltages (3.5–6 kV). The experimental results of the ring electrode configuration have been compared with the simulation analysis results. These results help in establishing an optimized operating range of the dielectric barrier discharge-based cold plasma jet in the glow discharge regime without arcing phenomenon. For the applied voltage and supply frequency parameters examined in this work, the discharge was found to be consistently homogeneous and displayed the characteristics of atmospheric pressure glow discharge.
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