DocumentCode :
731456
Title :
Evolution of a laser filamentation triggered electric discharge in air
Author :
Point, Guillaume ; Arantchouk, Leonid ; Carbonnel, Jerome ; Mysyrowicz, Andre ; Houard, Aurelien
Author_Institution :
Lab. d´Opt. Appl., Ecole Polytech., Palaiseau, France
fYear :
2015
fDate :
24-28 May 2015
Firstpage :
1
Lastpage :
1
Abstract :
Summary form only given. Laser filamentation guided electric discharges have many interesting applications, among which are the laser lightning rod, plasma aerodynamic control, high-power closing switches and plasma antennas. The latter cases rely on a precise control of the discharge plasma lifetime, either to adapt the switch or antenna on-state time to the current situation. In this work, we study the link between the temporal evolution of a laser filamentation triggered discharge plasma column and the discharge current waveform. The centimeter long plasma is generated by the discharge of a 2 nF capacitor charged to 15 kV, yielding a constant electric energy of 200 mJ. Various ballast resistances ranging from 400 to 10 Ω allow modifying the current waveform in the monopolar regime. A 29 μH coil can also be used to bring the circuit in the oscillatory regime. Plasma is characterized by means of two-color interferometry, enabling us to extract space and time-resolved electron density and neutral density radial profiles. We found that, in the monopolar regime, as the current pulse amplifies and shortens, electron density decay becomes dominated by electron-ion recombination, while low-current impulses result in a plasma decay closely related to the current waveform. Longer plasma lifetime is achieved using strong and short current pulses. As for the oscillatory regime, we show that in this case the plasma has a very slow decay, resulting in more favorable conditions for the generation of long lived plasma columns.
Keywords :
discharges (electric); electron density; light interferometry; plasma density; plasma diagnostics; plasma oscillations; plasma production by laser; plasma transport processes; air; ballast resistances; capacitance 2 nF; current pulse; discharge current waveform; discharge plasma column; discharge plasma lifetime; electron-ion recombination; energy 200 mJ; high-power closing switches; laser filamentation triggered electric discharge evolution; laser lightning rod; neutral density radial profiles; oscillatory regime; plasma aerodynamic control; plasma antennas; plasma decay; plasma lifetime; resistance 10 ohm to 400 ohm; space-resolved electron density; time-resolved electron density; two-color interferometry; voltage 15 kV; Aerodynamics; Antennas; Discharges (electric); Lightning; Plasmas; Switches;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Sciences (ICOPS), 2015 IEEE International Conference on
Conference_Location :
Antalya
Type :
conf
DOI :
10.1109/PLASMA.2015.7180005
Filename :
7180005
Link To Document :
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