论文标题
低电流直流排放中的电离波(条纹)在用杂化动力学模型获得的贵重气体中
Ionization waves (striations) in low-current DC discharges in noble gases obtained with a hybrid kinetic-fluid model
论文作者
论文摘要
混合动力流体模型用于研究高贵气体DC放电的低流动等离子体柱中的电离波(条纹)。获得电子方程的耦合溶液,离子的漂移扩散方程以及电场的泊松方程,以阐明正柱和近电极效应中等离子体分层的性质。当由于电子之间的逐步电离,气体加热和库仑相互作用引起的非线性效应时,简化的两级激励模型被忽略不计。可以证实,非局部效应是导致在低血浆密度下DC放电中移动条纹的形成。 Argon中霓虹灯和S类型中的自激,P类型的自激发波的计算特性与可用的实验数据一致。阐明了氦等离子体稳定性分层的原因。结果表明,当电离速率是电场的非线性函数时,维持分层的血浆比无纹状体等离子体更有效。但是,血浆分层不需要电离速率对电场的非线性依赖性。 S,P和R类型的霓虹灯的条纹具有最小或没有电离的增强。在我们的模拟中已经证明了列长度对波性能的影响。
A hybrid kinetic-fluid model is used to study ionization waves (striations) in a low-current plasma column of DC discharges in noble gases. Coupled solutions of a kinetic equation for electrons, a drift-diffusion equation of ions, and a Poisson equation for the electric field are obtained to clarify the nature of plasma stratification in the positive column and near-electrode effects. A simplified two-level excitation-ionization model is used for the conditions when the nonlinear effects due to stepwise ionization, gas heating, and Coulomb interactions among electrons are negligible. It is confirmed that the nonlocal effects are responsible for the formation of moving striations in DC discharges at low plasma densities. The calculated properties of self-excited waves of S, P, and R types in Neon and S type in Argon agree with available experimental data. The reason for Helium plasma stability to stratification is clarified. It is shown that sustaining stratified plasma is more efficient than striation-free plasma when the ionization rate is a nonlinear function of the electric field. However, the nonlinear dependence of the ionization rate on the electric field is not required for plasma stratification. Striations of S, P, and R types in Neon exist with minimal or no ionization enhancement. Effects of the column length on the wave properties have been demonstrated in our simulations.