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Hollow hexagonal pattern with surface discharges in a?dielectric barrier discharge

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【作者】 冯建宇董丽芳李彩霞刘莹杜天郝芳

【Author】 Jianyu FENG;Lifang DONG;Caixia LI;Ying LIU;Tian DU;Fang HAO;College of Physics Science and Technology, Hebei University;Hebei Key Laboratory of Optic-electronic Information Materials;

【机构】 College of Physics Science and Technology, Hebei UniversityHebei Key Laboratory of Optic-electronic Information Materials

【摘要】 The hollow hexagonal pattern involved in surface discharges is firstly investigated in a?dielectric barrier discharge system. The spatiotemporal structures of the pattern are studied using an intensified charge-coupled device and photomultiplier. Instantaneous images taken by an intensified charge-coupled device and optical correlation measurements show that the surface discharges are induced by volume discharges. The optical signals indicate that the discharge filaments constituting the hexagonal frame discharge randomly at the first current pulse or the second pulse, once?or twice. There is no?interleaving of several sub-lattices, which indicates that the ‘memory’ effect is no longer in force due to surface discharges. By using the emission spectrum method, both the molecule vibration temperature?and electron density of the surface discharges are larger than that of the volume discharges.

【Abstract】 The hollow hexagonal pattern involved in surface discharges is firstly investigated in a?dielectric barrier discharge system. The spatiotemporal structures of the pattern are studied using an intensified charge-coupled device and photomultiplier. Instantaneous images taken by an intensified charge-coupled device and optical correlation measurements show that the surface discharges are induced by volume discharges. The optical signals indicate that the discharge filaments constituting the hexagonal frame discharge randomly at the first current pulse or the second pulse, once?or twice. There is no?interleaving of several sub-lattices, which indicates that the ‘memory’ effect is no longer in force due to surface discharges. By using the emission spectrum method, both the molecule vibration temperature?and electron density of the surface discharges are larger than that of the volume discharges.

【基金】 supported by National Natural Science Foundation of China(Nos.11375051 and 11505044);Key Basic Research Project in the application basic research plan of Hebei Province(No.15961105D);the Research Foundation of Education Bureau of Hebei Province,China(No.LJRC011)
  • 【文献出处】 Plasma Science and Technology ,等离子体科学和技术(英文版) , 编辑部邮箱 ,2017年05期
  • 【分类号】O461
  • 【下载频次】26
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