Self-rotating dc atmospheric-pressure discharge over a water-surface electrode: regimes of operation

被引:55
作者
Wilson, Alyssa [1 ]
Staack, David [2 ]
Farouk, Tanvir [2 ]
Gutsol, Alexander [2 ]
Fridman, Alexander [2 ]
Farouk, Bakhtier
机构
[1] Drexel Univ, Dept Phys, Philadelphia, PA 19104 USA
[2] Drexel Univ, Dept Mech Engn & Mech, Philadelphia, PA 19104 USA
基金
美国国家科学基金会;
关键词
D O I
10.1088/0963-0252/17/4/045001
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
A dc atmospheric-pressure glow discharge produced between a metallic electrode and a water electrode is studied in this experiment. The discharge is characterized by means of visualization, high-speed imaging, voltage-current measurements, mass spectrometry and temperature measurements. Under certain conditions, the discharge exhibits a distinctive rotating motion in which the cathode spot remains stationary and the anode spot traces a circular pattern. Regimes of rotation occur in general at lower currents, at larger discharge gap lengths and when the water surface is the anode. Temperature measurements made in the rotating and stationary regimes show similar trends. Various metallic electrode materials, electrode geometries and discharge gases are investigated to determine the conditions under which rotation occurs. Rotation is only observed with a smooth cathode and a non-oxidizing anode material, such as water (or gold surface) that is either flat or otherwise provides no hindrances to the movement of the anode spot. Rotation is observed to occur in air and N-2-H-2 mixtures but not in pure N-2, H-2 or He; this suggests chemical mechanisms resulting in the formation of electronegative species as a possible cause for the rotation. Finally, measurements of the frequency of rotation of the discharge with respect to discharge length and current are made. These qualitative and quantitative results are used to evaluate various types of interactions as potential causes of this behavior.
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页数:12
相关论文
共 43 条
[21]   Development of open-air type electrolyle-as-cathode glow discharge-atomic emission spectrometry for determination of trace metals in water [J].
Kim, HJ ;
Lee, JH ;
Kim, MY ;
Cserfalvi, T ;
Mezei, P .
SPECTROCHIMICA ACTA PART B-ATOMIC SPECTROSCOPY, 2000, 55 (07) :823-831
[22]   Atmospheric-pressure plasma technology [J].
Kogelschatz, U .
PLASMA PHYSICS AND CONTROLLED FUSION, 2004, 46 :B63-B75
[23]   Striations in rare gas plasmas [J].
Kolobov, Vladimir I. .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2006, 39 (24) :R487-R506
[24]   Generation of large-volume, atmospheric-pressure, nonequilibrium plasmas [J].
Kunhardt, EE .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2000, 28 (01) :189-200
[25]   Modelling of microdischarge devices: plasma and gas dynamics [J].
Kushner, MJ .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2005, 38 (11) :1633-1643
[26]  
Laux C O, 2002, VONKARMAN I SPECIAL
[27]  
Linstrom PJ., 2018, NIST CHEM WEBBOOK
[28]   The investigation of an abnormal electrolyte cathode atmospheric glow discharge (ELCAD) [J].
Mezei, P ;
Cserfalvi, T .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2006, 39 (12) :2534-2539
[29]   The spatial distribution of the temperatures and the emitted spectrum in the electrolyte cathode atmospheric glow discharge [J].
Mezei, P ;
Cserfalvi, T ;
Csillag, L .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2005, 38 (16) :2804-2811
[30]   The gas temperature in the cathode surface - dark space boundary layer of an electrolyte cathode atmospheric glow discharge (ELCAD) [J].
Mezei, P ;
Cserfalvi, T ;
Janossy, M .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1998, 31 (11) :L41-L42