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State-to-state Modeling of Non Equilibrium Low-Temperature Atomic Plasmas

机译:非平衡低温原子等离子体的状态到状态模型

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The most relevant approach leading to a thorough understanding of the behavior of non equilibrium atomic plasmas is to elaborate state-to-state models in which the mass conservation equation is applied directly to atoms or ions on their excited states. The present communication reports the elaboration of such models and the results obtained. Two situations close to each other are considered. First, the plasmas produced behind shock fronts obtained in ground test facilities (shock tubes) or during planetary atmospheric entries of spacecrafts are discussed. We focused our attention on the nitrogen case for which a complete implementation of the CoRaM-N_2 collisional-radiative model has been performed in a steady one-dimensional computation code based on the Rankine-Hugoniot assumptions. Second, the plasmas produced by the interaction between an ultra short laser pulse and a tungsten sample are discussed in the framework of the elaboration of the Laser-Induced Breakdown Spectroscopy (LIBS) technique. In the present case, tungsten has been chosen in the purpose of validating an in situ experimental method able to provide the elemental composition of the divertor wall of a tokamak like WEST or ITER undergoing high energetic deuterium and tritium nuclei fluxes.
机译:导致彻底了解非平衡原子等离子体的行为的最相关方法是详细地制定状态到状态模型,其中质量保护方程被直接施加到其激发态的原子或离子上。目前的通信报告了这些模型的制定和获得的结果。考虑了两种情况。首先,讨论了在地面测试设施(冲击管)或航天器的行星大气条目中获得的震动前沿产生的等离子体。我们将注意力集中在基于Rankine-Hugoniot假设的稳定一维计算代码中完成了Coram-N_2碰撞模型的完整实施的氮气表现。其次,在激光诱导的击穿光谱(LIBS)技术的制定的框架中讨论了通过超短激光脉冲和钨样品之间的相互作用产生的等离子体。在本案例中,已选择授权钨的原位实验方法能够提供托卡马克的转向器壁的元素组成,如西方或迭代者接受高能量的氘和核核助量。

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