论文标题
在磁化等离子体中对激光诱导的荧光的定量评估,以计算不对准效应
Quantitative evaluation of laser-induced fluorescence in magnetized plasma accounting for disalignment effect
论文作者
论文摘要
磁化等离子体中可调节二极管激光诱导的荧光(TDLIF)测量值的定量评估考虑到了Zeeman分裂的能量水平和多个内皮中的混合,以在本文中讨论了$ \ MATHRM {2p_8} $多重的激发$ \ MATHRM的密度分布(对齐)。 TDLIF测量用于评估在不同压力条件下强烈磁性厚的光学灰色血浆中的光转港特性。因此,构建了速率平衡方程的耦合系统,以描述$ \ mathrm {2p_8} $ state的激光泵送,该磁性子级别通过频率分离的子过渡,源自$ \ Mathrm {1S_4} $磁性子级别。 $ \ mathrm {2p_8} $多重的密度分布是通过平衡激光泵送与包括辐射衰减的损失,由中性碰撞驱动的相邻多重组和由于电子和中性碰撞引起的震撼的损失的。然后,将产生的$ \ MATHRM {2P_8} $磁子级密度用于对依赖性荧光进行建模,考虑自我吸收,可以将其直接与测量的极化分辨率分辨的TDLIF测量值进行比较。这使得可以为$ \ mathrm {1s_4} $和$ \ mathrm {1S_5} $磁性子级密度获得唯一的解决方案,这些密度与激光吸收测量值获得的密度非常吻合。结果表明,磁化等离子体条件中的LIF测量值具有强大的压力依赖性,应考虑有效的损坏率。提出的测量方法和模型可以帮助进一步理解和改善磁化条件下氩气发射的描述。
Quantitative evaluation of tunable diode laser induced fluorescence (TDLIF) measurements in magnetized plasma take into account Zeeman splitting of energetic levels and intra-multiplet mixing defining the density distribution (alignment) of excited $\mathrm{2p_8}$ multiplet is discussed in this paper. TDLIF measurements were used to evaluate light-transport properties in a strongly magnetized optically thick argon plasma under different pressure conditions. Therefore, a coupled system of rate balance equations were constructed to describe laser pumping of individual magnetic sub-levels of $\mathrm{2p_8}$ state through frequency separated sub-transitions originating from $\mathrm{1s_4}$ magnetic sub-levels. The density distribution of $\mathrm{2p_8}$ multiplet was described by balancing laser pumping with losses including radiative decay, transfer of excitation between the neighboring multiplets driven by neutral collisions and quenching due to electron and neutral collisions. Resulting $\mathrm{2p_8}$ magnetic sub-level densities were then used to model polarization dependent fluorescence, consider self-absorption, which could be directly compared with measured polarization resolved TDLIF measurements. This enables to obtain unique solutions for the $\mathrm{1s_4}$ and $\mathrm{1s_5}$ magnetic sub-level densities which were in good agreement with the densities obtained by laser absorption measurements. It is shown that LIF measurements in magnetized plasma conditions have strong pressure dependence that should be corrected consider effective disalignment rate. The presented measurement method and model can help further understanding and improve description of optical emission of argon in magnetized conditions.