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First-principles Modeling of IAT-driven Anomalous Resistivity in Hollow Cathode Discharges II: Numerical Simulations and Comparisons with Experiments

机译:IAT驱动空心阴极放电异常电阻率的第一性原理建模II:数值模拟和与实验的比较

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We present a model that quantifies the magnitude of the ion-acoustic turbulence (IAT) in the plume of hollow cathodes and its effect on the resistivity and ion heating. The model takes the form of a partial differential equation (PDE) that can be solved concurrently with the equations of motion for a partially ionized plasma already included in our numerical code for the simulation of the plasma discharge in hollow cathodes, OrCa2D. We also determine that self-induced magnetic fields are not negligible in hollow cathodes operating at large discharge currents and implement in our code Ampere's law and modifications to Ohm's law that account for this effect. Numerical simulations that employed these models show large improvements in our agreement with experimental measurements with respect to a previous model, which assumed complete saturation of the IAT and did not account for the growth stage of the waves. In particular, the model is able to accurately predict the location and magnitude of the maximum resitivity to the electron current along the cathode centerline.
机译:我们提出了一个模型,该模型量化了空心阴极羽流中离子声湍流(IAT)的大小及其对电阻率和离子加热的影响。该模型采用偏微分方程(PDE)的形式,可以与部分电离等离子体的运动方程同时求解,该方程已包含在我们的数值代码中,用于模拟空心阴极OrCa2D中的等离子体放电。我们还确定在大放电电流下工作的空心阴极中,自感应磁场不可忽略,并在我们的规范安培定律和对欧姆定律的修正中实现了这种效应。使用这些模型的数值模拟表明,与先前的模型相比,我们在实验测量方面的协议有了很大的改进,该模型假定IAT完全饱和,并且没有考虑波浪的生长阶段。特别地,该模型能够准确预测沿阴极中心线对电子电流的最大电阻率的位置和大小。

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