DocumentCode :
1129090
Title :
Characteristics of an arc-seeded microwave plasma torch
Author :
Kuo, Spencer P. ; Bivolaru, Daniel ; Lai, Henry ; Lai, Wilson ; Popovic, Svetozar ; Kessaratikoon, Prasong
Author_Institution :
Dept. of Electr. & Comput. Eng., Polytech. Univ., Brooklyn, NY, USA
Volume :
32
Issue :
4
fYear :
2004
Firstpage :
1734
Lastpage :
1741
Abstract :
The design and operation of a portable microwave plasma torch is presented. An arc plasma torch running at 60 Hz and generated by a torch module is installed on the bottom wall in the narrow section of a tapered S-band rectangular cavity, and is used to seed the microwave discharge at the location where the microwave electric field is at a maximum. This tapered cavity is designed to support the TE103 mode. With seeding, only low Q cavity and moderate microwave power (time average power of 700 W) are needed. The microwave-enhanced discharge increases the size, cycle energy, and duty cycle of the torch plasma considerably. This torch can be run without introducing gas flow to stabilize the arc and microwave discharges. Adding gas flow can increase not only the size of the torch plasma, but also its cycle energy which reaches a plateau of about 12 J/per cycle for a gas flow rate exceeding 0.393 l/s. The electron density and excitation temperature, and the composition of torch species are determined by emission spectroscopy. It is shown that, at the bottom of the torch close to the cavity wall, electrons distribute quite uniformly across the core of the torch with density and excitation temperature determined to be about 7×1013 cm-3 and 8000 K, respectively. It is also found that this torch produces an abundance of reactive atomic oxygen.
Keywords :
arcs (electric); high-frequency discharges; luminescence; plasma density; plasma diagnostics; plasma flow; plasma impurities; plasma instability; plasma temperature; plasma torches; 60 Hz; 700 W; 8000 K; arc discharges; arc-seeded microwave plasma torch; electron density; emission spectroscopy; excitation temperature; gas flow; microwave discharge stabilization; reactive atomic oxygen; tapered S-band rectangular cavity; torch module; Atmospheric-pressure plasmas; Electromagnetic heating; Fluid flow; Plasma applications; Plasma chemistry; Plasma density; Plasma materials processing; Plasma properties; Plasma sources; Plasma temperature; Decontamination; emission spectroscopy; microwave plasma torch; plasma torch module;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2004.832517
Filename :
1341547
Link To Document :
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