Measurements of power dissipated in an atmospheric pressure plasma jet device with double plasma discharge ignition

IF 1.5 4区 物理与天体物理 Q3 OPTICS
Fellype do Nascimento, Kleber A. Petroski, Thalita M. C. Nishime, Konstantin G. Kostov
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Abstract

Atmospheric pressure plasma jets (APPJs) are versatile devices with numerous applications. This work focuses on APPJs generated at the tip of long, flexible tubes using the jet transfer technique. The plasma source consists of a primary discharge and a secondary discharge forming the plasma jet. Discharge power measurements were carried out in a way that it was possible to separate the contribution of the primary discharge from the total power dissipated by the plasma source. Both power and effective current were analyzed under different operating conditions. The results show that the variation in the primary discharge power is much lower than the power dissipated by the plasma jet. Additionally, the electrical characteristics of the plasma device were analyzed. Notable differences were observed between the negative and positive phases of the discharge, with a more resistive load in the negative one, which suggests that the electrical equivalent circuit model changes according to the voltage polarity.

The primary discharge spectra are not affected by differences in electrical characteristics of the discharges with the plasma jet on and off

双等离子体放电点火常压等离子体喷射装置耗散功率的测量
大气压等离子体射流(APPJs)是一种用途广泛的设备。这项工作的重点是利用射流转移技术在长柔性管的尖端产生的APPJs。等离子体源包括形成等离子体射流的一次放电和二次放电。放电功率测量以一种可以将初级放电的贡献从等离子体源耗散的总功率中分离出来的方式进行。分析了不同工况下的功率和有效电流。结果表明,等离子体射流的一次放电功率的变化远远小于其耗散的功率。此外,还分析了等离子体器件的电学特性。放电的负相和正相之间存在显著差异,负相的电阻性负载更大,这表明电等效电路模型根据电压极性而变化。初级放电光谱不受等离子体射流开启和关闭时放电电特性差异的影响
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来源期刊
The European Physical Journal D
The European Physical Journal D 物理-物理:原子、分子和化学物理
CiteScore
3.10
自引率
11.10%
发文量
213
审稿时长
3 months
期刊介绍: The European Physical Journal D (EPJ D) presents new and original research results in: Atomic Physics; Molecular Physics and Chemical Physics; Atomic and Molecular Collisions; Clusters and Nanostructures; Plasma Physics; Laser Cooling and Quantum Gas; Nonlinear Dynamics; Optical Physics; Quantum Optics and Quantum Information; Ultraintense and Ultrashort Laser Fields. The range of topics covered in these areas is extensive, from Molecular Interaction and Reactivity to Spectroscopy and Thermodynamics of Clusters, from Atomic Optics to Bose-Einstein Condensation to Femtochemistry.
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