Study the Effect of Dielectric Barrier Discharge (DBD) Plasma on the Decomposition of Volatile Organic Compounds

Hiba Qassim Farag, Saba J. Kadhem
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Abstract

Recently, research has focused on non-thermal plasma (NTP) technologies as a way to remove volatile organic compounds from the air stream, due to its distinctive qualities, which include a quick reaction at room temperature. In this work, the properties of the plasma generated by the dielectric barrier discharge (DBD) system and by a glass insulator were studied. Plasma was generated at different voltages (3, 4, 6, 7, 8 kV ) with a fixed distance between the electrodes of 5 mm, and a constant argon gas flow rate of (2.5) I/min. DBD plasma emission spectra were recorded for each voltage. The Boltzmann plot method was used to calculate the electron temperature in the plasma ( ), and the Stark expansion method was used to calculate the electron density ( ). The decomposition of organic compounds (cyclohexane) was also studied using DBD plasma. The results showed that the potential difference between the two electrodes has a clear effect on the plasma parameters, as the temperature of the electrons  and the density of electrons  increase with the increase in the potential difference between the two electrodes. The DBD plasma system proved to be a good way to decompose volatile organic compounds, as the results proved the emission of hydrogen gas as one of the dissociation products of cyclohexane.
介质阻挡放电等离子体对挥发性有机物分解的影响研究
最近,由于非热等离子体(NTP)技术具有独特的特性,包括在室温下的快速反应,因此研究集中在非热等离子体(NTP)技术上,作为一种从气流中去除挥发性有机化合物的方法。本文研究了介质阻挡放电(DBD)系统和玻璃绝缘体产生的等离子体的特性。在不同电压(3、4、6、7、8 kV)下产生等离子体,电极之间固定距离为5mm,氩气流速恒定为(2.5)I/min。记录了各电压下DBD等离子体发射光谱。采用玻尔兹曼图法计算等离子体中的电子温度(),采用斯塔克展开法计算电子密度()。还研究了DBD等离子体对有机化合物(环己烷)的分解。结果表明,两电极电位差对等离子体参数有明显的影响,随着两电极电位差的增大,电子的温度和电子的密度也随之增大。DBD等离子体系统是一种很好的分解挥发性有机物的方法,因为结果证明了氢气是环己烷的解离产物之一。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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