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首页> 外文期刊>Plasma Sources Science & Technology >Particle-in-cell and Monte Carlo collision simulations of the cathode sheath in an atmospheric direct-current arc discharge
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Particle-in-cell and Monte Carlo collision simulations of the cathode sheath in an atmospheric direct-current arc discharge

机译:大气直流电弧放电中阴极护套的粒子细胞和蒙特卡罗碰撞模拟

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A sheath is the transition region from plasma to a solid surface, which also plays a critical role in determining the behaviors of many lab and industrial plasmas. However, the cathode sheath properties in arc discharges are not well understood yet due to its multi-scale and kinetic features. In this letter, we have adopted an implicit particle-in-cell Monte Carlo collision (PIC-MCC) method to study the cathode sheath in an atmospheric arc discharge plasma. The cathode sheath thickness, number densities and averaged energies of electrons and ions, the electric field distribution, as well as the spatially averaged electron energy probability function (EEPF), are predicted self-consistently by using this newly developed kinetic model. It is also shown that the thermionic emission at the hot cathode surface is the dominant electron emission process to sustain the arc discharges, while the effects from secondary and field electron emissions are negligible. The present results verify the previous conjectures and experimental observations.
机译:护套是从等离子体到固体表面的过渡区域,这也在确定许多实验室和工业等离子体的行为方面发挥着关键作用。然而,由于其多尺度和动力学特征,弧形放电中的阴极鞘属性尚未得到很好的理解。在这封信中,我们采用了隐含的粒子内蒙特卡罗碰撞(PIC-MCC)方法,以研究大气电弧放电等离子体中的阴极护套。通过使用这种新开发的动力学模型,可以通过使用这种新开发的动态模型来预测电子和离子的阴极护套厚度,电场分布以及空间平均的电子能量概率函数(EEPF)。还表明热阴极表面的热离子发射是维持电弧放电的主要电子发射过程,而来自二次和现场电子发射的效果可以忽略不计。本结果验证了先前的猜想和实验观察。

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