Electron swarms in two-phase plasmas

M. McCaughey, M. Kushner
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引用次数: 2

Abstract

Commercial and research devices using electric discharges (low-temperature, partially ionized plasmas) are inevitably contaminated by solid particulate matter. The plasma is therefore composed of two phases: solid and gas. If the size of the particulate matter is comparable to or larger than the Debye length, a sheath will develop at the surface of the dust in a manner similar to that at the surface of a macroscopic object in contact with the plasma. The sheath around the particulate matter occludes current flow and perturbs the electron energy distribution function (EEDF). The former process can lead to discharge instabilities; the latter can detrimentally effect the electron impact rate coefficients. To assess the impact of charged particulate matter on electron transport coefficients, a hybrid molecular-dynamics-Monte-Carlo simulation has been developed. The EEDF is obtained by integrating the trajectory of electrons in the sheath regions of the dust while simultaneously applying Monte Carlo techniques for collisions with gas atoms or molecules. A self-consistent value is obtained for the sheath potential at the surface of the dust by requiring that equal fluxes of electrons and ions flow to the surface. Electrons striking the dust are removed from the simulation, thereby effectively cutting off the EEDF at the sheath potential.<>
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两相等离子体中的电子群
使用放电(低温,部分电离等离子体)的商业和研究设备不可避免地受到固体颗粒物质的污染。因此,等离子体由两相组成:固体和气体。如果颗粒物质的大小与德拜长度相当或大于德拜长度,则在尘埃表面会形成一个鞘层,其方式类似于与等离子体接触的宏观物体表面。微粒周围的鞘层阻塞了电流并扰乱了电子能量分布函数(EEDF)。前一种过程会导致放电不稳定;后者会对电子撞击率系数产生不利影响。为了评估带电粒子物质对电子传递系数的影响,开发了一种混合分子动力学-蒙特卡罗模拟。通过对尘埃鞘层区域的电子轨迹进行积分,同时应用蒙特卡罗技术与气体原子或分子碰撞,获得了EEDF。通过要求流向表面的电子和离子的流量相等,可以获得粉尘表面鞘层电位的自一致值。撞击灰尘的电子从模拟中移除,从而有效地切断了鞘层电位处的EEDF。
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