论文标题

经过验证的短碳弧的二维建模:阳极和阴极斑点

Validated two-dimensional modeling of short carbon arcs: anode and cathode spots

论文作者

Chen, J., Khrabry, A., Kaganovich, I. D., Khodak, A., Vekselman, V., Li, H. -P.

论文摘要

为了研究短碳弧的属性,将一个自洽模型实现为CFD代码ANSYS-CFX。该模型以耦合方式处理血浆中的热量和电流的传输,并解释腔室中气体对流。对电极处的多个表面过程进行了建模,包括形成空间充电有限的护套,碳的消融和沉积,辐射和电子的发射和吸收。模拟表明,弧在阴极附近被限制,并且阳极前表面导致电极斑点的形成。阴极斑点是众所周知的现象,在其他地方报道了其形成的机制。但是,这项工作中发现的阳极斑点形成机制以前没有报道过。我们得出的结论是,斑点的形成与血浆不稳定性无关,因为在放电柱的情况下通常认为,而是由于阳极中热平衡的高度非线性性质而发生的。我们还通过降低的阳极传热模型证明了这一特性。我们还表明,斑点大小随弧电流而增加。我们的实验也证实了这种阳极斑点行为。由于阳极斑的形成,大量的碳气体密度发生在阳极附近,该阳极在阳极附近驱动一部分消融的碳的一部分,回到其周围的阳极。因此,这可以降低总消融率。仿真结果还表明,弧线可以在柱区域达到局部化学平衡(LCE)状态,而局部热平衡(LTE)状态通常无法在实验条件下实现。它表明,在短碳弧建模中考虑不同的电子和气温很重要。

In order to study properties of short carbon arcs, a self-consistent model was implemented into a CFD code ANSYS-CFX. The model treats transport of heat and electric current in the plasma and the electrodes in a coupled manner and accounts for gas convection in the chamber. Multiple surface processes at the electrodes are modeled, including the formation of space-charge limited sheaths, ablation and deposition of carbon, emission and absorption of radiation and electrons. The simulations show that the arc is constricted near the cathode and the anode front surfaces leading to the formation of electrode spots. The cathode spot is a well-known phenomenon and mechanisms of its formation were reported elsewhere. However, the anode spot formation mechanism discovered in this work was not reported before. We conclude that the spot formation is not related to plasma instability, as commonly believed in case of constricted discharge columns, but rather occurs due to the highly nonlinear nature of heat balance in the anode. We additionally demonstrate this property with a reduced anode heat transfer model. We also show that the spot size increases with the arc current. This anode spot behavior was also confirmed in our experiments. Due to the anode spot formation, a large gradient of carbon gas density occurs near the anode, which drives a portion of the ablated carbon back to the anode at its periphery. This can consequently reduce the total ablation rate. Simulation results also show that the arc can reach local chemical equilibrium (LCE) state in the column region while the local thermal equilibrium (LTE) state is not typically achieved for experimental conditions. It shows that it is important to account for different electron and gas temperatures in the modeling of short carbon arcs.

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