Experimental studies of H2/Ar plasma in a cylindrical inductive discharges with an expansion region

Shi-Bo Li, Si-Yu Xing, F. Gao, You-Nian Wang
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Abstract

The electrical parameters of H2/Ar plasma in a cylindrical inductive discharge with an expansion region are investigated by a Langmuir probe, where Ar fractions range from 0 % to 100 %. The influence of gas composition and pressure on electron density, the effective electron temperature and the electron energy probability functions (EEPFs) at different spatial positions are present. In driver region, with the introduction of a small amount of Ar at 0.3 Pa, there is a rapid increase in electron density accompanied by a decrease in the effective electron temperature. Additionally, the shape of the EEPF transitions from a three-temperature distribution to a bi-Maxwellian distribution due to an increase in electron-electron collision. However, this phenomenon resulting from the changes in gas composition vanishes at 5 Pa duo to the prior depletion of energetic electrons caused by the increase in pressure during hydrogen discharge. The EEPFs for the total energy in expansion region is coincident to these in the driver region at 0.3 Pa, as do the patterns of electron density variation between these two regions for differing Ar fractions. At 5 Pa, as the discharge transitions from H2 to Ar, the EEPFs evolved from a bi-Maxwellian distribution with pronounced low energy electrons to a Maxwellian distribution in expansion region. This evolve may be attributed to a reduction in molecular vibrational excitation reactions of electrons during transport and the transition from localized electron dynamics in hydrogen discharge to non-localized electron dynamics in argon discharge. In order to validate the experimental results, we use the COMSOL simulation software to calculate electrical parameters under the same conditions. The evolution and spatial distribution of the electrical parameters of the simulation results agree well with the trend of the experimental results.
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带膨胀区的圆柱形感应放电中的 H2/Ar 等离子体的实验研究
通过朗缪尔探针研究了带膨胀区的圆柱形感应放电中 H2/Ar 等离子体的电参数,其中 Ar 的比例范围为 0 % 至 100 %。气体成分和压力对不同空间位置的电子密度、有效电子温度和电子能量概率函数(EEPFs)都有影响。在驱动区,当引入少量 0.3 Pa 的氩气时,电子密度迅速增加,同时有效电子温度降低。此外,由于电子-电子碰撞的增加,EEPF 的形状也从三温分布转变为双麦克斯韦分布。然而,由于氢放电过程中压力增加导致高能电子耗尽,气体成分变化引起的这一现象在 5 Pa 时消失了。在 0.3 Pa 时,膨胀区总能量的 EEPF 与驱动区的 EEPF 相吻合,这两个区域之间不同 Ar 分数的电子密度变化规律也是如此。在 5 Pa 时,随着放电从 H2 转变为 Ar,EEPFs 从低能电子明显的双麦克斯韦分布演变为膨胀区的麦克斯韦分布。这种演变可能是由于电子在传输过程中的分子振动激发反应减少,以及从氢放电中的局部电子动力学过渡到氩放电中的非局部电子动力学。为了验证实验结果,我们使用 COMSOL 仿真软件计算了相同条件下的电参数。模拟结果中电学参数的演变和空间分布与实验结果的趋势非常吻合。
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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