{"title":"低电流惰性气体交流放电中的等离子体分层。","authors":"Vladimir I Kolobov, Robert R Arslanbekov","doi":"10.1103/PhysRevE.111.015203","DOIUrl":null,"url":null,"abstract":"<p><p>A hybrid kinetic-fluid model is used to study plasma stratification in alternating current (ac) discharges in noble gases at low plasma densities. Self-consistent coupled solutions of a nonlocal kinetic equation for electrons, a drift-diffusion equation of ions, and a Poisson equation for the electric field are obtained for a positive column and the entire discharge with near-electrode sheaths. Standing striations are obtained for the reduced values of electric fields, E/p, corresponding to the inelastic energy balance of electrons in a range of driving frequencies. An analog of Novak's law, Λ≈ɛ_{1}/(e〈E〉) (striation length Λ proportional to the excitation threshold of atoms ɛ_{1} and inversely proportional to the mean square root of the electric field 〈E〉, where e is the electron charge), is observed in simulations, indicating the nonlocal nature of standing striations in ac discharges at low plasma densities. Stratified plasma operates in a dynamic regime for various driving frequencies. In this regime, ions respond to the time-averaged electric field, whereas electrons react to the instantaneous electric field. The disparity of time scales between ambipolar diffusion, which occurs at the ion time scale, and electron kinetics in the coordinate-energy phase space, which occurs at the free electron diffusion time scale, produces complicated fluxes in the phase space (due to electron heating, energy loss in collisions, and ionization processes) that are responsible for the stratification. Our paper emphasizes the need for the kinetic approach to analyze stratification phenomena in ac discharge of noble gases. It promotes an efficient method for the kinetic treatment of electrons that is an alternative to the commonly used particle-in-cell method.</p>","PeriodicalId":20085,"journal":{"name":"Physical review. E","volume":"111 1-2","pages":"015203"},"PeriodicalIF":2.4000,"publicationDate":"2025-01-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Plasma stratification in ac discharges in noble gases at low currents.\",\"authors\":\"Vladimir I Kolobov, Robert R Arslanbekov\",\"doi\":\"10.1103/PhysRevE.111.015203\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>A hybrid kinetic-fluid model is used to study plasma stratification in alternating current (ac) discharges in noble gases at low plasma densities. Self-consistent coupled solutions of a nonlocal kinetic equation for electrons, a drift-diffusion equation of ions, and a Poisson equation for the electric field are obtained for a positive column and the entire discharge with near-electrode sheaths. Standing striations are obtained for the reduced values of electric fields, E/p, corresponding to the inelastic energy balance of electrons in a range of driving frequencies. An analog of Novak's law, Λ≈ɛ_{1}/(e〈E〉) (striation length Λ proportional to the excitation threshold of atoms ɛ_{1} and inversely proportional to the mean square root of the electric field 〈E〉, where e is the electron charge), is observed in simulations, indicating the nonlocal nature of standing striations in ac discharges at low plasma densities. Stratified plasma operates in a dynamic regime for various driving frequencies. In this regime, ions respond to the time-averaged electric field, whereas electrons react to the instantaneous electric field. The disparity of time scales between ambipolar diffusion, which occurs at the ion time scale, and electron kinetics in the coordinate-energy phase space, which occurs at the free electron diffusion time scale, produces complicated fluxes in the phase space (due to electron heating, energy loss in collisions, and ionization processes) that are responsible for the stratification. Our paper emphasizes the need for the kinetic approach to analyze stratification phenomena in ac discharge of noble gases. It promotes an efficient method for the kinetic treatment of electrons that is an alternative to the commonly used particle-in-cell method.</p>\",\"PeriodicalId\":20085,\"journal\":{\"name\":\"Physical review. 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引用次数: 0
摘要
采用混合动力学-流体模型研究了低等离子体密度惰性气体中交流放电中的等离子体分层现象。得到了电子的非局部动力学方程、离子的漂移扩散方程和电场的泊松方程的自一致耦合解。在一定的驱动频率范围内,电子的非弹性能量平衡对应的电场E/p的约化值得到了固定的条纹。模拟中观察到诺瓦克定律的一个类似方程Λ≈ε {1}/(e < e >)(条纹长度Λ与原子的激发阈值ε{1}成正比,与电场的平均平方根< e >成反比,其中e为电子电荷),表明在低等离子体密度下交流放电中存在的条纹的非局域性质。在不同的驱动频率下,分层等离子体在动态状态下工作。在这种情况下,离子对时间平均电场作出反应,而电子对瞬时电场作出反应。发生在离子时间尺度上的双极性扩散与发生在自由电子扩散时间尺度上的坐标能量相空间中的电子动力学之间的时间尺度差异,在相空间中产生复杂的通量(由于电子加热,碰撞中的能量损失和电离过程),这是造成分层的原因。本文强调用动力学方法分析稀有气体交流放电中的分层现象的必要性。它促进了一种有效的电子动力学处理方法,这是一种常用的细胞内粒子方法的替代方法。
Plasma stratification in ac discharges in noble gases at low currents.
A hybrid kinetic-fluid model is used to study plasma stratification in alternating current (ac) discharges in noble gases at low plasma densities. Self-consistent coupled solutions of a nonlocal kinetic equation for electrons, a drift-diffusion equation of ions, and a Poisson equation for the electric field are obtained for a positive column and the entire discharge with near-electrode sheaths. Standing striations are obtained for the reduced values of electric fields, E/p, corresponding to the inelastic energy balance of electrons in a range of driving frequencies. An analog of Novak's law, Λ≈ɛ_{1}/(e〈E〉) (striation length Λ proportional to the excitation threshold of atoms ɛ_{1} and inversely proportional to the mean square root of the electric field 〈E〉, where e is the electron charge), is observed in simulations, indicating the nonlocal nature of standing striations in ac discharges at low plasma densities. Stratified plasma operates in a dynamic regime for various driving frequencies. In this regime, ions respond to the time-averaged electric field, whereas electrons react to the instantaneous electric field. The disparity of time scales between ambipolar diffusion, which occurs at the ion time scale, and electron kinetics in the coordinate-energy phase space, which occurs at the free electron diffusion time scale, produces complicated fluxes in the phase space (due to electron heating, energy loss in collisions, and ionization processes) that are responsible for the stratification. Our paper emphasizes the need for the kinetic approach to analyze stratification phenomena in ac discharge of noble gases. It promotes an efficient method for the kinetic treatment of electrons that is an alternative to the commonly used particle-in-cell method.
期刊介绍:
Physical Review E (PRE), broad and interdisciplinary in scope, focuses on collective phenomena of many-body systems, with statistical physics and nonlinear dynamics as the central themes of the journal. Physical Review E publishes recent developments in biological and soft matter physics including granular materials, colloids, complex fluids, liquid crystals, and polymers. The journal covers fluid dynamics and plasma physics and includes sections on computational and interdisciplinary physics, for example, complex networks.