论文标题
通过在冷等离子体中使用langmuir探针,通过Q-Weibull分布估算血浆参数的新程序
New procedure to estimate plasma parameters through the q-Weibull distribution by using a Langmuir probe in a cold plasma
论文作者
论文摘要
我们描述了通过使用druyvesteyn方程从I-V Langmuir曲线获得等离子参数的过程。我们建议将两个新参数分别包括在通常的等离子参数:等离子电位($ v_p $),浮动电位($ v_f $),电子密度($ n $)和电子温度($ t $)。这些新参数对于表示非Maxwellian分布特别有用。该过程基于I-V Langmuir曲线与$ Q $ -Weibull分布功能的拟合度,并且是由使用$ Q $ - 指定分布功能的最新作品激励的,该作品来自Tsallis Statistics。我们获得了使用三种技术的通常的等离子参数:使用Savitzky Golay(SG)过滤器,$ Q $ - 指定分布功能和$ Q $ -Weibull分布功能的数值差异化。我们解释了$ q $ - 指数函数的局限性,其中实验数据$ v> v_p $需要事先修剪,这与与SG的数值差异相比,准确性较低。为了克服这一困难,$ q $ -Weibull函数被引入是对$ Q $ - 指数分布的自然概括,并且它具有更大的灵活性,以表示缩放性更改左右$ v_p $。我们应用此过程来分析与使用位于阴极不同高度的单个Langmuir探针获得的氮$ N_2 $冷等离子体的测量值。我们表明,$ q $参数具有非常稳定的数值,高度。这项工作可能有助于阐明在血浆诊断中使用非扩展统计数据的一些优势和局限性,但是血浆物理学中非扩展参数的物理解释仍未完全阐明,并且需要进一步研究。
We describe a procedure to obtain the plasma parameters from the I-V Langmuir curve by using the Druyvesteyn equation. We propose to include two new parameters, $q$ and $r$, to the usual plasma parameters: plasma potential ($V_p$), floating potential ($V_f$), electron density ($n$), and electron temperature ($T$). These new parameters can be particularly useful to represent non-Maxwellian distributions. The procedure is based on the fit of the I-V Langmuir curve with the $q$-Weibull distribution function, and is motivated by recent works which use the $q$-exponential distribution function derived from Tsallis statistics. We obtain the usual plasma parameters employing three techniques: the numerical differentiation using Savitzky Golay (SG) filters, the $q$-exponential distribution function, and the $q$-Weibull distribution function. We explain the limitations of the $q$-exponential function, where the experimental data $V>V_p$ needs to be trimmed beforehand, and this results in a lower accuracy compared to the numerical differentiation with SG. To overcome this difficulty, the $q$-Weibull function is introduced as a natural generalization to the $q$-exponential distribution, and it has greater flexibility in order to represent the concavity change around $V_p$. We apply this procedure to analyze the measurements corresponding to a nitrogen $N_2$ cold plasma obtained by using a single Langmuir probe located at different heights from the cathode. We show that the $q$ parameter has a very stable numerical value with the height. This work may contribute to clarify some advantages and limitations of the use of non-extensive statistics in plasma diagnostics, but the physical interpretation of the non-extensive parameters in plasma physics remains not fully clarified, and requires further research.