变压器模型耦合系数表征在无创等离子体监测中的应用

Haneul Lee, Y. Jang, M. Lee, Ki-Baek Roh, Taejun Park, Ing-Fang Lee, Gon-Ho Kim
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引用次数: 0

摘要

变压器模型中的耦合系数($k$)广泛应用于电感耦合等离子体放电的电路分析中,它是一个全局值,表示通过主天线电流与次级等离子体电流之间磁通量的变化来表示耦合程度。虽然$k$的决定因素包括电子密度和有效电子碰撞频率的集肤深度,但在给定压力下,这些等离子体参数可以从$k$与ICP天线电参数之间的关系中反向计算出来,而无需额外的诊断工具。在基于变压器模型确定的实时无创等离子体诊断法中,为了简化电路分析模型1,假设放电电流路径产生的磁感应量($L_{p}$)等于天线的电感量($L_{a}$)。本研究通过测量天线电压、电流(V-I)和等离子体参数,阐明了L_{p}=L_{a}$假设在变压器模型分析中的适用放电条件。从测量天线V-I得到的$k$计算值与各种条件下的等离子体特性之间的差异解释了$L_{p}=L_{a}$假设的可能范围。对h模ICP放电进行了实验,结果与基于电磁模型数值方法的预测趋势吻合较好。用电信号和等离子体参数对变压器模型的耦合系数进行验证,表明耦合系数监测可用于无创ICP等离子体诊断中体积平均等离子体参数的实时监测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterization of Coupling Coefficient for Transformer Model Application in Non-Invasive Plasma Monitoring
Coupling coefficient ($k$) in transformer model, which is widely used in the circuit analysis of inductively coupled plasma(ICP) discharges, is a global value that indicates the degree of coupling by the change of magnetic flux between the primary antenna current and the secondary plasma current. Although the determinants of $k$ include the skin depth as a function of electron density and effective electron collision frequency, those plasma parameters can be calculated inversely from the relation between $k$ and electrical parameters at the antenna of ICP without additional diagnostic tools at a given pressure. In real-time non-invasive plasma diagnosis method using the determined $k$ based on the transformer model, the magnetic inductance due to the discharge current path ($L_{p}$) is assumed to be equal to the inductance of antenna ($L_{a}$) to simplify the circuit analysis model1. This study clarifies the applicable discharge condition of $L_{p}=L_{a}$ assumption in transformer model analysis by measuring voltage and current(V-I) of the antenna and plasma parameters. Difference between calculated values of $k$ from the measured antenna V-I and plasma properties in various conditions explains the possible range of $L_{p}=L_{a}$ assumption. Experiment was conducted on H-mode ICP discharge and the results are in good agreement with the predictive trends based on numerical approach of electromagnetic model. Verification of coupling coefficient in transformer model with electric signals and plasma parameters shows that monitoring of coupling coefficient can be adopted for real-time monitoring of volume averaged plasma parameter in non-invasive ICP plasma diagnostics.
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