DocumentCode :
731424
Title :
Investigation of non-thermal atmospheric pressure plasma jet in contact with liquids-using ICCD camera
Author :
Adress, Wameedh ; Abe, Yusuki ; Graham, Bill
Author_Institution :
Centre for Plasma Phys., Queen´s Univ. Belfast, Belfast, UK
fYear :
2015
fDate :
24-28 May 2015
Firstpage :
1
Lastpage :
1
Abstract :
Summary form only given. Non-thermal atmospheric pressure plasma jets APPjs are a promising new field of research which are beneficial to many associated technologies, such as material treatment and biomedical applications [1],[2]. The use of non-thermal plasmas for the eradication and control of bacterial infection and contamination are acquired great attention in biomedical applications [3]. The effects of non-thermal plasma operating conditions on the bacterial inactivation rate have been investigated in many previous studies. In this study a kHz-driven APPj source of a structure similar to that designed by Teschke et al in 2005 [4], which has been studied recently by many research groups in different configurations [5]. The experimental setup simulates the activity of a APPj against biofilms of Bacillus cereus to investigate the influence of APPj. The method improves the understanding of the interaction mechanism between the plasma jet and the liquid biological samples.The plasma discharge is created inside a cylindrical quartz tube with inner and outer diameters 4mm, 6mm respectively and two electrodes is used to forming dielectric barrier discharge. A high voltage in kilovolt is used to ignite the plasma. A pure helium gas flows through the discharge tube at a 2 standard liters per minute and 0.5% oxygen impurities. This atmospheric pressure plasma jet is used to generate non-thermal plasma bullets away from the production region. The gas channel guides the bullets in the air space between the quartz tube and the liquid surface. In the measurements the plasma plume was allowed to interact with two different liquids, in different volumes (conductor and nonconductor). The interaction is with a dielectric container similar to the one used in the bacterial inactivation by the plasma jet. The distance between the end of the quartz tube and the liquid surface is 1.5 cm. Time-resolved images of the optical emission were measured using ICCD camera (iStar usb Andor Te- hnology DH520) in nanoseconds time scale. The images were illustrated the evolution of the bullets in air-space and liquid surface. The spatio-temporally resolved images investigate the interaction dynamics between the plasma plume and the liquid surface.The emission intensity from only one cycle was captured and accumulated over several cycles to study the behaviour of the plume with different liquid surfaces. The absorption intensity of plasma was measured by the ICCD camera at different locations of the container. The plasma intensities and bullets velocity were measured directly. Primary results were shown that the bullets velocity depends strongly on the type and shape of the liquid surface. The images were proved that the plasma plume slightly spreads out into the liquid and absorbed inside the liquid without any penetration. The plasma remains in the liquid about 1 μs before finally extinguishing, or dissipates into the liquid. The optical emission spectroscopy of the plasma plume on different surfaces was investigated.
Keywords :
CCD image sensors; antibacterial activity; dielectric-barrier discharges; ignition; plasma applications; plasma diagnostics; plasma jets; plasma sources; sterilisation (microbiological); Bacillus cereus; ICCD camera; air space; air-space; bacterial contamination; bacterial inactivation rate; bacterial infection control; bacterial infection eradication; biofilms; biomedical applications; bullet velocity; cylindrical quartz tube; dielectric barrier discharge; dielectric container; discharge tube; distance 1.5 cm; emission intensity; gas channel; ignition; interaction dynamics; interaction mechanism; kHz-driven APPj source; liquid biological samples; liquid surface shape; liquid surface type; liquid surfaces; material treatment; nonthermal atmospheric pressure plasma jets; nonthermal plasma bullets; nonthermal plasma operating conditions; optical emission spectroscopy; oxygen impurities; plasma absorption intensity; plasma discharge; plasma plume; pressure 1 atm; production region; pure helium gas flows; size 4 mm; size 6 mm; spatiotemporally resolved images; time 1 mus; time-resolved images; Cameras; Discharges (electric); Electron tubes; Liquids; Microorganisms; Plasma measurements; Plasmas;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Sciences (ICOPS), 2015 IEEE International Conference on
Conference_Location :
Antalya
Type :
conf
DOI :
10.1109/PLASMA.2015.7179968
Filename :
7179968
Link To Document :
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