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Numerical Simulations of Trichel Pulses in a Negative Corona in Air

机译:空气负电晕中Trichel脉冲的数值模拟

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摘要

Numerical simulations of a negative corona in air demonstrate that the experimentally observed regime of self-oscillations, known as Trichel pulses, is well described by a three-dimensional axisymmetric model that is based on the standard transport equations and in which only the ion-induced secondary electron emission at the cathode is taken into account. The quantitative difference between the measured and calculated values of the mean current and the pulse repetition rate most likely stems from the insufficiently large dimensions of the computation region and from the fact that the point shape adopted in simulations somewhat inexactly conforms to that used in experiments. It was found that the transverse discharge structure near the cathode radically changes during the pulse. Specifically, as the current grows, a cathode sheath forms at the discharge axis and expands over the cathode surface. When the current falls off, the cathode sheath is rapidly destroyed; as a result, the characteristic field structure is well defined only near the discharge axis and becomes virtually indistinguishable as the current decreases by an order of magnitude.
机译:空气中负电晕的数值模拟表明,实验观察到的自激振荡状态(称为Trichel脉冲)已由基于标准传输方程的三维轴对称模型很好地描述,其中只有离子诱导的考虑到阴极的二次电子发射。平均电流的测量值和计算值与脉冲重复率之间的数量差异很可能是由于计算区域的尺寸不够大,以及模拟中采用的点形状与实验中使用的点形状有些不精确的事实。发现在脉冲期间阴极附近的横向放电结构发生了根本变化。具体地,随着电流的增长,在放电轴处形成阴极鞘并在阴极表面上膨胀。当电流下降时,阴极护套会被迅速破坏。结果,仅在放电轴附近就很好地定义了特征场结构,并且当电流减小一个数量级时,几乎没有区别。

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