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Entrainment in high-velocity, high-temperature plasma jets. Part Ⅱ: computational results and comparison to experiment

机译:夹带在高速高温等离子流中。第二部分:计算结果与实验比较

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The development of a turbulent high-velocity, high-temperature argon plasma jet issuing into air has been computationally modeled using the computer program LAVA. LAVA is a comprehensive computational software program developed for flowing thermal plasmas in the absence of electromagnetic fields, with particular emphasis on plasma jets. The plasma is represented as a multicomponent chemically reacting ideal gas with temperature-dependent thermo-dynamic and transport properties. The plasma flow is governed by the complete transient, compressible Navier-Stokes equations in two-dimensions in the current simulation. Turbulence is represented by the k-ε model. Neutrals, ions and electrons are considered as separate components of species of the mixture. General kinetic and equilibrium chemistry algorithms compute ionization, dissociation, recombination and other chemical reactions. Computational results and extensive comparisons with experimental data are presented. In particular the influence of inflow boundary conditions and the ability of the k-ε, turbulence model to describe entrainment with chemistry are examined.
机译:已经使用计算机程序LAVA对流向空气中的湍流高速,高温氩等离子体射流的发展进行了建模。 LAVA是为在没有电磁场的情况下流动热等离子体而开发的综合计算软件程序,尤其着重于等离子体射流。等离子体表示为具有与温度有关的热力学和传输特性的理想化学成分的多组分化学反应。在当前模拟中,等离子体流由二维的完整瞬态可压缩Navier-Stokes方程控制。湍流由k-ε模型表示。中性,离子和电子被认为是混合物物种的独立组成部分。通用动力学和平衡化学算法可计算电离,离解,重组和其他化学反应。给出了计算结果并与实验数据进行了广泛的比较。特别是检查了流入边界条件的影响以及k-ε,湍流模型描述化学夹带的能力。

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