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Investigation on the micro-discharge characteristics of dielectric barrier discharge in a needle-plate geometry

机译:针板几何中介电势垒放电的微放电特性研究

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In this study, a dielectric barrier discharge device with needle-plate electrodes was used to investigate the characteristics of the micro-discharge in argon at one atmospheric pressure by an optical method. The results show that there are two discharge modes in the dielectric barrier discharge, namely corona mode and filamentary mode. The corona discharge only occurs in the vicinity of the needle tip when the applied voltage is very low. However, the filamentary discharge mode can occur, and micro-discharge bridges the two electrodes when the applied voltage reaches a certain value. The extended area of micro-discharge on the dielectric plate becomes larger with the increase in applied voltage or decrease in gas pressure. The variance of the light emission waveforms is studied as a function of the applied voltage. Results show that very narrow discharge pulse only appears at the negative half cycle of the applied voltage in the corona discharge mode. However, broad hump (about several microseconds) can be discerned at both the negative half cycle and the positive half cycle for a high voltage in the filamentary mode. Furthermore, the inception voltage decreases and the width of the discharge hump increases with the increase in applied voltage. These experimental phenomena can be explained qualitatively by analyzing the discharge mechanism.
机译:在这项研究中,采用带针板电极的介质阻挡放电装置,通过光学方法研究了在一个大气压下氩气中的微放电特性。结果表明,介质阻挡放电有两种放电模式,即电晕模式和丝状模式。当施加的电压非常低时,电晕放电仅在针尖附近发生。但是,可能会出现丝状放电模式,并且当施加的电压达到一定值时,微放电会桥接两个电极。随着施加电压的增加或气体压力的减小,电介质板上的微放电的扩展区域变大。研究发光波形的变化与所施加电压的关系。结果表明,在电晕放电模式下,非常窄的放电脉冲仅出现在施加电压的负半周。但是,对于丝状模式下的高电压,在负半周和正半周都可以看到宽峰(约几微秒)。此外,随着施加电压的增加,起始电压降低,放电峰的宽度增加。通过分析放电机理可以定性地解释这些实验现象。

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