论文标题
蓝核直升机等离子体中的波传播和功率沉积
Wave propagation and power deposition in blue-core helicon plasma
论文作者
论文摘要
蓝核直升机等离子体中的波传播和功率沉积是指最近实验。发现波电场的径向轮廓在蓝核形成过程中偏离轴,并且该峰的位置非常接近实验中观察到的粒子传输屏障的位置。波浪磁场的径向轮廓显示了蓝核色谱柱内的多种径向模式,这与通过贝塞尔功能对相干高$ m $模式的实验观察一致。波场的轴向剖面表明,一旦达到蓝核模式,与外部相比,波只能在形成的圆柱内传播不同的相位。波能分布在蓝核柱边缘显示了一个清晰而尖锐的边界,此外,观察到周期性结构,并且内部的轴向周期性几乎是外部的两倍。蓝核列内的分散关系表现出多种模式,这是谐振腔的特征,在频率变化过程中选择不同的模式,而外部的分散关系则可以随着频率变化的恒定波数。功率沉积似乎是沿径向方向和周期性沿轴向方向及周期性的轴,主要是在蓝核柱中。基于阶梯函数理论并引入蓝核常数的分析提供了一致的结果。还探索了蓝核柱与光纤在电磁通信中的等效性,并激发了Helicon等离子体的新颖应用,这可能是当前工作中最有趣的发现之一。
The wave propagation and power deposition in blue-core helicon plasma are computed referring to recent experiments. It is found that the radial profile of wave electric field peaks off-axis during the blue-core formation, and the location of this peak is very close to that of particle transport barrier observed in experiment; the radial profile of wave magnetic field shows multiple radial modes inside the blue-core column, which is consistent with the experimental observation of coherent high $m$ modes through Bessel function. The axial profiles of wave field indicate that, once the blue-core mode has been achieved, waves can only propagate inside the formed column with distinct phase compared to that outside. The wave energy distribution shows a clear and sharp boundary at the edge of blue-core column, besides which periodic structures are observed and the axial periodicity inside is nearly twice that outside. The dispersion relation inside the blue-core column exhibits multiple modes, a feature of resonant cavity that selects different modes during frequency variation, while the dispersion relation outside gives constant wave number with changed frequency. The power deposition appears to be off-axis in the radial direction and periodic in the axial direction, and mostly inside the blue-core column. Analyses based on step-like function theory and introduced blue-core constant provide consistent results. The equivalence of blue-core column to optical fiber for electromagnetic communication is also explored and inspires a novel application of helicon plasma, which may be one of the most interesting findings of present work.