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

被引:0
|
作者
do Nascimento, Fellype [1 ]
Petroski, Kleber A. [1 ]
Nishime, Thalita M. C. [2 ]
Kostov, Konstantin G. [1 ]
机构
[1] Faculty of Engineering and Sciences, São Paulo State University-UNESP, Guaratinguetá,12516-410, Brazil
[2] Leibniz Institute for Plasma Science and Technology-INP, Greifswald,17489, Germany
来源
European Physical Journal D | 2024年 / 78卷 / 12期
关键词
Magnetoplasma - Plasma applications - Plasma devices - Plasma jets;
D O I
10.1140/epjd/s10053-024-00946-z
中图分类号
学科分类号
摘要
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 Author(s), under exclusive licence to EDP Sciences, SIF and Springer-Verlag GmbH Germany, part of Springer Nature 2024.
引用
收藏
相关论文
共 50 条
  • [1] Dissipated electrical power and electron density in an RF atmospheric pressure helium plasma jet
    Golda, J.
    Kogelheide, F.
    Awakowicz, P.
    Schulz-von der Gathen, V.
    PLASMA SOURCES SCIENCE & TECHNOLOGY, 2019, 28 (09):
  • [2] An atmospheric pressure nonequilibrium plasma jet device
    Xiong, Qing
    Lu, Xin Pei
    Jiang, Zhong He
    Tang, Zhi Yuan
    Hu, Jing
    Xiong, Zhi Lan
    Pan, Yuan
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2008, 36 (04) : 986 - 987
  • [3] Power modulation in an atmospheric pressure plasma jet
    Kelly, S.
    Turner, M. M.
    PLASMA SOURCES SCIENCE & TECHNOLOGY, 2014, 23 (06):
  • [4] Ignition and Propagation of an Atmospheric-Pressure Helium Plasma Jet
    Walsh, James L.
    Kong, Michael G.
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2011, 39 (11) : 2306 - 2307
  • [5] Investigation of discharge mechanisms in helium plasma jet at atmospheric pressure by laser spectroscopic measurements
    Urabe, Keiichiro
    Morita, Tadasuke
    Tachibana, Kunihide
    Ganguly, Biswa N.
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2010, 43 (09)
  • [6] Double-Layered Atmospheric Pressure Plasma Jet
    Choi, Jaegu
    Matsuo, Keita
    Yoshida, Hidekazu
    Namihira, Takao
    Katsuki, Sunao
    Akiyama, Hidenori
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2009, 48 (08) : 0860031 - 0860033
  • [7] Double-layered atmospheric pressure plasma jet
    Choi, Jaegu
    Matsuo, Keita
    Yoshida, Hidekazu
    Namihira, Takao
    Katsuki, Sunao
    Akiyama, Hidenori
    Japanese Journal of Applied Physics, 2009, 48 (8 Part 1): : 086003 - 086003
  • [8] A low power miniaturized dielectric barrier discharge based atmospheric pressure plasma jet
    Deepak, G. Divya
    Joshi, N. K.
    Pal, Dharmendra Kumar
    Prakash, Ram
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2017, 88 (01):
  • [9] Atmospheric pressure plasma jet powered by piezoelectric direct discharge
    Korzec, Dariusz
    Hoppenthaler, Florian
    Burger, Dominik
    Andres, Thomas
    Nettesheim, Stefan
    PLASMA PROCESSES AND POLYMERS, 2020, 17 (11)
  • [10] Analysis of Discharge Characteristics of Cold Atmospheric Pressure Plasma Jet
    Sharma, Navin Kumar
    Misra, Shikha
    Varun
    Lamba, Ram Prakash
    Choyal, Yaduvendra
    Pal, Udit Narayan
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2021, 49 (09) : 2799 - 2805