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Study on Modes of the Pulsed Dielectric Barrier Discharges at Atmospheric Pressure in Helium

机译:氦气中大气压脉冲介质阻挡放电的模式研究

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For the dielectric barrier discharge (DBD) at atmospheric pressure in helium excited by repetitive voltage pulses (called the pulsed DBD), two discharge modes, atmospheric pressure glow DBD (APGD), and atmospheric pressure Townsend DBD (APTD), have been numerically investigated by means of a 1-D fluid model. The influences of several important operation parameters, i.e., voltage growth rate (r_{rm vg}) , gap width (d_{g}) , dielectric thickness (d_{s}) , and dielectric constant (varepsilon _{r}) , on the discharge modes have been explored. Especially, the parameter regions in which each discharge mode located have been presented, in an effort to indicate the effects of the interaction of (r_{rm vg}) , (d_{g}) , and (d_{s}) on the discharge modes. This paper shows that there are two discharge modes in the pulsed DBD, relying on the used discharge parameters, and the obtained significant results are as follows. Based on the axial distributions of electric field, electron density, and ion density in the gap at the time point where the first discharge occurs, the discharge in APGD is of the following evident characteristics: 1) there are both cathode fall and quasi-neutral plasma bulk and 2) the electron density is evident large, when compared with those for the discharge in APTD. The increase of voltage growth rate or the increase of the capacitance of dielectrics by decreasing (d_{s}) or by increa- ing (varepsilon _{r}) can induce the transition of the discharge mode from APTD to APGD. With the use of efficient large gap width, APGD is easier to be driven. In particular, to what extent can the discharge be affected by a discharge parameter? This is still governed by other parameters and is shown using the regions of the parameters in which each discharge mode located.
机译:对于在大气压力下由重复电压脉冲激发的氦气中的介电势垒放电(DBD)(称为脉冲DBD),已对两种放电模式(大气辉光DBD(APGD)和大气压力Townsend DBD(APTD))进行了数值研究通过一维流体模型几个重要操作参数的影响,即电压增长率 (r_ {rm vg}) ,间隙宽度 (d_ {g}) ,电介质厚度 (d_ {s}) ,介电常数 (varepsilon _ {r}) ,已经研究了放电模式。尤其是,已经提出了每种放电模式所处的参数区域,以指示 (r_ {rm vg}) (d_ {g}) 放电模式上的(d_ {s}) 。本文表明,脉冲DBD中存在两种放电模式,具体取决于所使用的放电参数,得出的重要结果如下。根据第一次发生放电时的间隙中电场,电子密度和离子密度的轴向分布,APGD中的放电具有以下明显特征:1)同时存在阴极下降和准中性等离子体体积和2)与APTD中的放电相比,电子密度明显较大。通过减小 (d_ {s}) 来提高电压增长率或增加电介质的电容,或者通过增加 (varepsilon _ {r}) 可以诱导放电模式从APTD过渡到APGD 。通过使用有效的大间隙宽度,APGD易于驱动。特别是,放电参数可在多大程度上影响放电?这仍然由其他参数控制,并使用每种放电模式所位于的参数区域进行显示。

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