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Development of PIC-DSMC air breakdown model in the presence of a dielectric: Breakdown time sensitivity to self-absorption and photoemission

机译:在电介质存在下开发PIC-DSMC空气击穿模型:击穿时间对自吸收和光发射的敏感性

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Summary form only given. Electrical breakdown between electrodes in the presence of a dielectric cylinder is simulated using an electrostatic particle-in-cell (PIC) code that models particle-particle collisions using the direct simulation Monte Carlo (DSMC) method. In this talk we will present recent work on sensitivity of the breakdown time delay to the dielectric photoemission yield and to inclusion of self-absorption of photons by the background gas. Validation of the simulation model is being performed against prior experimental data on breakdown across a 13mm rod-to-plane gap with a 10mm dielectric cylinder in the middle1. The dielectric cylinder provides both an electron source by photoemission from low energy photons and enhances the reduced field (thus changing the plasma radiation spectrum)2.The model includes electron-neutral elastic, excitation, ionization, and attachment collision chemistry; ion and photon induced electron emission from surfaces; ion-neutral collisions; and self-absorption, photoionization, and photodissociation. The model tracks excited state neutrals which can be quenched through collisions with the background gas and surfaces or spontaneously emit a photon (isotropically) and transition to a lower state. Each simulated photon from an emission event is given a wavelength based on the transition that includes natural and Doppler broadening3. Emitted photons have an energy dependent probability of causing photoemission from the dielectric or electrode surfaces, as pre-computed by a separate electron Monte Carlo transport code4.
机译:仅提供摘要表格。使用静电池中粒子(PIC)代码模拟存在介电圆柱体的情况下电极之间的电击穿,该代码使用直接模拟蒙特卡洛(DSMC)方法对粒子间的碰撞进行建模。在本次演讲中,我们将介绍击穿时间延迟对介电光发射率的敏感性以及背景气体对光子自身吸收的敏感性的最新工作。仿真模型的验证是针对先前的实验数据进行的,该实验数据涉及中间13mm的棒与平面之间的间隙和10mm的绝缘圆柱击穿1。介电圆柱体既通过低能光子的光发射提供电子源,又增强了减小的场(从而改变了等离子体辐射光谱)2。模型包括电子中性弹性,激发,电离和附着碰撞化学;离子和光子从表面发射电子;离子中性碰撞;以及自吸收,光电离和光解离。该模型跟踪激发态中性粒子,该激发态中性粒子可以通过与背景气体和表面的碰撞来淬灭,或者自发地(各向同性)发射光子并转变为较低的态。来自发射事件的每个模拟光子都基于包括自然和多普勒加宽3的跃迁而被赋予波长。发射的光子具有与能量相关的概率,会导致从电介质或电极表面产生光发射,如通过单独的电子蒙特卡洛传输代码4预先计算的那样。

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