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Plasma propagation of a 13.56MHz asymmetric surface barrier discharge in atmospheric pressure air

Identifieur interne : 006350 ( Main/Exploration ); précédent : 006349; suivant : 006351

Plasma propagation of a 13.56MHz asymmetric surface barrier discharge in atmospheric pressure air

Auteurs : J. Dedrick [Australie] ; R W Boswell [Australie] ; P. Audier [France] ; H. Rabat [France] ; D. Hong [France] ; C. Charles [Australie]

Source :

RBID : ISTEX:082DE33CEF47F88293B81A0A2B48DE4971C28DC6

Descripteurs français

English descriptors

Abstract

The propagation of an rf asymmetric surface barrier discharge in atmospheric pressure air has been investigated. Measurements of the pulse-modulated 13.56MHz voltage and current together with ICCD images of the plasma were recorded to study the visible plasma structure with respect to the rf pulses, time within the pulses and the rf waveforms. When exposing images over full rf pulses, which comprise over 150 oscillations of the applied voltage, clearly defined filamentary structures are observed indicating a strong memory effect. The discharge intensity decreases exponentially with distance from the electrode edge, and the average propagation length increases linearly with the applied voltage. Similar to some lower frequency asymmetric surface dielectric barrier discharges, two distinct breakdown events occur during one period of the voltage waveform. The number of filaments is found to be the same for both breakdown events, and collective effects are observed in both discharges.

Url:
DOI: 10.1088/0022-3727/44/20/205202


Affiliations:


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Le document en format XML

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<term>Appl</term>
<term>Asymmetric surface barrier discharge</term>
<term>Atmospheric pressure</term>
<term>Atmospheric pressure discharges</term>
<term>Average intensity</term>
<term>Barrier discharge</term>
<term>Breakdown</term>
<term>Capacitive discharge</term>
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<term>Collective effects</term>
<term>Current increases</term>
<term>Current pulses</term>
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<term>Dielectric barrier</term>
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<term>Dielectric barrier discharge plasma actuators</term>
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<term>Discharges propagating</term>
<term>Distinct breakdown events</term>
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<term>Electrode edge</term>
<term>Electrode span</term>
<term>Electron density</term>
<term>Exposure time</term>
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<term>IV characteristic</term>
<term>Iccd</term>
<term>Memory effect</term>
<term>Optical emission</term>
<term>Optical emission intensity</term>
<term>Oscillations</term>
<term>Other side</term>
<term>Perpendicular distance</term>
<term>Phys</term>
<term>Plasma</term>
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<term>Plasma actuator</term>
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<term>Propagation length</term>
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<term>Streamer</term>
<term>Surface barrier</term>
<term>Surface plasma</term>
<term>Termination point</term>
<term>Voltage waveform</term>
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<term>Waveform</term>
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<term>Wide range</term>
<term>Wires</term>
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<term>5280T</term>
<term>Barrière surface</term>
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<div type="abstract">The propagation of an rf asymmetric surface barrier discharge in atmospheric pressure air has been investigated. Measurements of the pulse-modulated 13.56MHz voltage and current together with ICCD images of the plasma were recorded to study the visible plasma structure with respect to the rf pulses, time within the pulses and the rf waveforms. When exposing images over full rf pulses, which comprise over 150 oscillations of the applied voltage, clearly defined filamentary structures are observed indicating a strong memory effect. The discharge intensity decreases exponentially with distance from the electrode edge, and the average propagation length increases linearly with the applied voltage. Similar to some lower frequency asymmetric surface dielectric barrier discharges, two distinct breakdown events occur during one period of the voltage waveform. The number of filaments is found to be the same for both breakdown events, and collective effects are observed in both discharges.</div>
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