Theoretical investigation of a novel microwave driven ICP plasma jet
Authors
Klute, Michael
Porteanu, Horia-Eugen

Stefanović, Ilija

Bibinov, Nikita
Heinrich, Wolfgang
Awakowicz, Peter
Brinkmann, Ralf Peter

Conference object (Published version)
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Show full item recordAbstract
Theoretical investigation of a novel microwave driven ICP plasma jet
26 Jun 2019, 16:15
15m
Gold Coast III/IV (Double Tree at the Entrance to Universal Orlando)
Oral 2.7 Microwave Plasma Interaction 2.7 Microwave Plasma Interaction III
Speaker
Mr Michael Klute (Ruhr University)
Description
Microwave and radio frequency driven plasmas-jets play an important role in many technical applications. They are usually operated in a capacitive mode known as E-mode. This mode, however, couples considerable power to ions which limits the plasma density and the efficiency and gives rise to negative side effects such as erosion. The inductive coupling, known as H-mode, eliminates these disadvantages and is attractive for large scale plasmas. A novel small scale, microwave driven plasma-jet has been proposed by \textit{Porteanu et al.}[1]. It is operated as an inductive discharge and that has been recently characterized using optical emission spectroscopy (OES) by \textit{Stefanovic et al....}[2]. In this work the proposed plasma-jet is examined theoretically. A global model of the new device is presented based on the volume-integrated balances of particle number and electron density, and a series representation of the electromagnetic field in the resonator. An infinite number of modes can be found ordered by the azimuthal wave number m. The mode m=0 can be identified with the inductive mode and will be called H-mode, the mode m=1 is the capacitive mode and will be called E-mode. By equating the electromagnetic power that is absorbed by the plasma with the loss power, stable operating points and hysteresis effects can be investigated. In a second step the spatially resolved electromagnetic field strength will be considered. All results will be compared to the results of the OES measurements and imagines obtained from CCD-imaging.
[1]Porteanu et al.\textit{Plasma Sources Sci.Technol.}\textbf{22}, 035016 (2013)
[2] Stefanovic et al.\textit{Plasma Sources Sci.Technol.}\textbf{27}, 12LT01 (2018)
[3] Porteanu et al.\textit{Plasma Sources Sci.Technol.} accepted (2019)
Keywords:
microwave driven inductively coupled plasma / radio frequency driven plasmaSource:
2019 IEEE International Conference on Plasma Sciences (ICOPS), 22-28 June 2019, Orlando, Florida, 2019Publisher:
- IEEE
URI
https://indico.cern.ch/event/727938/contributions/3339171/https://dais.sanu.ac.rs/123456789/6959
Institution/Community
Институт техничких наука САНУ / Institute of Technical Sciences of SASATY - CONF AU - Klute, Michael AU - Porteanu, Horia-Eugen AU - Stefanović, Ilija AU - Bibinov, Nikita AU - Heinrich, Wolfgang AU - Awakowicz, Peter AU - Brinkmann, Ralf Peter PY - 2019 UR - https://indico.cern.ch/event/727938/contributions/3339171/ UR - https://dais.sanu.ac.rs/123456789/6959 AB - Theoretical investigation of a novel microwave driven ICP plasma jet 26 Jun 2019, 16:15 15m Gold Coast III/IV (Double Tree at the Entrance to Universal Orlando) Oral 2.7 Microwave Plasma Interaction 2.7 Microwave Plasma Interaction III Speaker Mr Michael Klute (Ruhr University) Description Microwave and radio frequency driven plasmas-jets play an important role in many technical applications. They are usually operated in a capacitive mode known as E-mode. This mode, however, couples considerable power to ions which limits the plasma density and the efficiency and gives rise to negative side effects such as erosion. The inductive coupling, known as H-mode, eliminates these disadvantages and is attractive for large scale plasmas. A novel small scale, microwave driven plasma-jet has been proposed by \textit{Porteanu et al.}[1]. It is operated as an inductive discharge and that has been recently characterized using optical emission spectroscopy (OES) by \textit{Stefanovic et al.}[2]. In this work the proposed plasma-jet is examined theoretically. A global model of the new device is presented based on the volume-integrated balances of particle number and electron density, and a series representation of the electromagnetic field in the resonator. An infinite number of modes can be found ordered by the azimuthal wave number m. The mode m=0 can be identified with the inductive mode and will be called H-mode, the mode m=1 is the capacitive mode and will be called E-mode. By equating the electromagnetic power that is absorbed by the plasma with the loss power, stable operating points and hysteresis effects can be investigated. In a second step the spatially resolved electromagnetic field strength will be considered. All results will be compared to the results of the OES measurements and imagines obtained from CCD-imaging. [1]Porteanu et al.\textit{Plasma Sources Sci.Technol.}\textbf{22}, 035016 (2013) [2] Stefanovic et al.\textit{Plasma Sources Sci.Technol.}\textbf{27}, 12LT01 (2018) [3] Porteanu et al.\textit{Plasma Sources Sci.Technol.} accepted (2019) PB - IEEE C3 - 2019 IEEE International Conference on Plasma Sciences (ICOPS), 22-28 June 2019, Orlando, Florida T1 - Theoretical investigation of a novel microwave driven ICP plasma jet UR - https://hdl.handle.net/21.15107/rcub_dais_6959 ER -
@conference{ author = "Klute, Michael and Porteanu, Horia-Eugen and Stefanović, Ilija and Bibinov, Nikita and Heinrich, Wolfgang and Awakowicz, Peter and Brinkmann, Ralf Peter", year = "2019", abstract = "Theoretical investigation of a novel microwave driven ICP plasma jet 26 Jun 2019, 16:15 15m Gold Coast III/IV (Double Tree at the Entrance to Universal Orlando) Oral 2.7 Microwave Plasma Interaction 2.7 Microwave Plasma Interaction III Speaker Mr Michael Klute (Ruhr University) Description Microwave and radio frequency driven plasmas-jets play an important role in many technical applications. They are usually operated in a capacitive mode known as E-mode. This mode, however, couples considerable power to ions which limits the plasma density and the efficiency and gives rise to negative side effects such as erosion. The inductive coupling, known as H-mode, eliminates these disadvantages and is attractive for large scale plasmas. A novel small scale, microwave driven plasma-jet has been proposed by \textit{Porteanu et al.}[1]. It is operated as an inductive discharge and that has been recently characterized using optical emission spectroscopy (OES) by \textit{Stefanovic et al.}[2]. In this work the proposed plasma-jet is examined theoretically. A global model of the new device is presented based on the volume-integrated balances of particle number and electron density, and a series representation of the electromagnetic field in the resonator. An infinite number of modes can be found ordered by the azimuthal wave number m. The mode m=0 can be identified with the inductive mode and will be called H-mode, the mode m=1 is the capacitive mode and will be called E-mode. By equating the electromagnetic power that is absorbed by the plasma with the loss power, stable operating points and hysteresis effects can be investigated. In a second step the spatially resolved electromagnetic field strength will be considered. All results will be compared to the results of the OES measurements and imagines obtained from CCD-imaging. [1]Porteanu et al.\textit{Plasma Sources Sci.Technol.}\textbf{22}, 035016 (2013) [2] Stefanovic et al.\textit{Plasma Sources Sci.Technol.}\textbf{27}, 12LT01 (2018) [3] Porteanu et al.\textit{Plasma Sources Sci.Technol.} accepted (2019)", publisher = "IEEE", journal = "2019 IEEE International Conference on Plasma Sciences (ICOPS), 22-28 June 2019, Orlando, Florida", title = "Theoretical investigation of a novel microwave driven ICP plasma jet", url = "https://hdl.handle.net/21.15107/rcub_dais_6959" }
Klute, M., Porteanu, H., Stefanović, I., Bibinov, N., Heinrich, W., Awakowicz, P.,& Brinkmann, R. P.. (2019). Theoretical investigation of a novel microwave driven ICP plasma jet. in 2019 IEEE International Conference on Plasma Sciences (ICOPS), 22-28 June 2019, Orlando, Florida IEEE.. https://hdl.handle.net/21.15107/rcub_dais_6959
Klute M, Porteanu H, Stefanović I, Bibinov N, Heinrich W, Awakowicz P, Brinkmann RP. Theoretical investigation of a novel microwave driven ICP plasma jet. in 2019 IEEE International Conference on Plasma Sciences (ICOPS), 22-28 June 2019, Orlando, Florida. 2019;. https://hdl.handle.net/21.15107/rcub_dais_6959 .
Klute, Michael, Porteanu, Horia-Eugen, Stefanović, Ilija, Bibinov, Nikita, Heinrich, Wolfgang, Awakowicz, Peter, Brinkmann, Ralf Peter, "Theoretical investigation of a novel microwave driven ICP plasma jet" in 2019 IEEE International Conference on Plasma Sciences (ICOPS), 22-28 June 2019, Orlando, Florida (2019), https://hdl.handle.net/21.15107/rcub_dais_6959 .