The density and velocity of plasma bullets propagating along one dielectric tube

This study shows that the propagation of plasma bullets along one dielectric tube is strongly affected by many discharge parameters, such as the waveform of applied voltage (AC or pulsed DC), peak voltage, He flow rate, and the frequency of AC voltage. Analysis indicates that the density and velocit...

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Main Authors: Longfei Ji, Yang Xia, Zhenhua Bi, Jinhai Niu, Dongping Liu
Format: Article
Language:English
Published: AIP Publishing LLC 2015-08-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.4929982
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spelling doaj-354c2a493f23462fb01778600707147a2020-11-25T02:28:55ZengAIP Publishing LLCAIP Advances2158-32262015-08-0158087181087181-810.1063/1.4929982080508ADVThe density and velocity of plasma bullets propagating along one dielectric tubeLongfei Ji0Yang Xia1Zhenhua Bi2Jinhai Niu3Dongping Liu4Liaoning Key Lab of Optoelectronic Films & Materials, School of Physics and Materials Engineering, Dalian Nationalities University, Dalian 116600, People’s Republic of ChinaLiaoning Key Lab of Optoelectronic Films & Materials, School of Physics and Materials Engineering, Dalian Nationalities University, Dalian 116600, People’s Republic of ChinaLiaoning Key Lab of Optoelectronic Films & Materials, School of Physics and Materials Engineering, Dalian Nationalities University, Dalian 116600, People’s Republic of ChinaLiaoning Key Lab of Optoelectronic Films & Materials, School of Physics and Materials Engineering, Dalian Nationalities University, Dalian 116600, People’s Republic of ChinaLiaoning Key Lab of Optoelectronic Films & Materials, School of Physics and Materials Engineering, Dalian Nationalities University, Dalian 116600, People’s Republic of ChinaThis study shows that the propagation of plasma bullets along one dielectric tube is strongly affected by many discharge parameters, such as the waveform of applied voltage (AC or pulsed DC), peak voltage, He flow rate, and the frequency of AC voltage. Analysis indicates that the density and velocity of plasma bullets are mainly determined by the electric field at the front of plasma bullets. These discharge parameters may significantly influence the distribution of plasma potential along the tube, thus control the electric field at the front of plasma bullets and their propagation. An increase in the pulsed DC voltage with its rise time of <40-50 ns can lead to an obvious improvement in the electric field at the front of plasma bullets, resulting in generation of a plasma in the high density gas and a fast propagation of plasma bullets. He flowing through the tube can contribute to the surface diffusion of charged species, and greatly increase the electric field at the front of plasma bullets. During the propagation of plasma bullets, their density is decreased due to the surface recombination of charged species, such as electrons and ions.http://dx.doi.org/10.1063/1.4929982
collection DOAJ
language English
format Article
sources DOAJ
author Longfei Ji
Yang Xia
Zhenhua Bi
Jinhai Niu
Dongping Liu
spellingShingle Longfei Ji
Yang Xia
Zhenhua Bi
Jinhai Niu
Dongping Liu
The density and velocity of plasma bullets propagating along one dielectric tube
AIP Advances
author_facet Longfei Ji
Yang Xia
Zhenhua Bi
Jinhai Niu
Dongping Liu
author_sort Longfei Ji
title The density and velocity of plasma bullets propagating along one dielectric tube
title_short The density and velocity of plasma bullets propagating along one dielectric tube
title_full The density and velocity of plasma bullets propagating along one dielectric tube
title_fullStr The density and velocity of plasma bullets propagating along one dielectric tube
title_full_unstemmed The density and velocity of plasma bullets propagating along one dielectric tube
title_sort density and velocity of plasma bullets propagating along one dielectric tube
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2015-08-01
description This study shows that the propagation of plasma bullets along one dielectric tube is strongly affected by many discharge parameters, such as the waveform of applied voltage (AC or pulsed DC), peak voltage, He flow rate, and the frequency of AC voltage. Analysis indicates that the density and velocity of plasma bullets are mainly determined by the electric field at the front of plasma bullets. These discharge parameters may significantly influence the distribution of plasma potential along the tube, thus control the electric field at the front of plasma bullets and their propagation. An increase in the pulsed DC voltage with its rise time of <40-50 ns can lead to an obvious improvement in the electric field at the front of plasma bullets, resulting in generation of a plasma in the high density gas and a fast propagation of plasma bullets. He flowing through the tube can contribute to the surface diffusion of charged species, and greatly increase the electric field at the front of plasma bullets. During the propagation of plasma bullets, their density is decreased due to the surface recombination of charged species, such as electrons and ions.
url http://dx.doi.org/10.1063/1.4929982
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