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脉冲放电等离子体技术去除一氧化氮(NO)污染气体的动力学

Removal dynamics of nitric oxide (NO) pollutant gas by pulse-discharged plasma technique.

作者信息

Zhang Lianshui, Wang Xiaojun, Lai Weidong, Cheng Xueliang, Zhao Kuifang

机构信息

College of Physics Science and Technology, Hebei University, Baoding, Hebei Province 071002, China.

出版信息

ScientificWorldJournal. 2014 Mar 5;2014:653576. doi: 10.1155/2014/653576. eCollection 2014.

Abstract

Nonthermal plasma technique has drawn extensive attentions for removal of air pollutants such as NO x and SO2. The NO removal mechanism in pulse discharged plasma is discussed in this paper. Emission spectra diagnosis indicates that the higher the discharge voltage is, the more the NO are removed and transformed into O, N, N2, NO2, and so forth. Plasma electron temperature T(e) is ranged from 6400 K at 2.4 kV discharge voltage to 9500 K at 4.8 kV. After establishing a zero-dimensional chemical reaction kinetic model, the major reaction paths are clarified as the electron collision dissociation of NO into N and O during discharge and followed by single substitution of N on NO to form N2 during and after discharge, compared with the small fraction of NO2 formed by oxidizing NO. The reaction directions can be adjusted by N2 additive, and the optimal N2/NO mixing ratio is 2 : 1. Such a ratio not only compensates the disadvantage of electron competitive consumption by the mixed N2, but also heightens the total NO removal extent through accelerating the NO oxidization process.

摘要

非热等离子体技术在去除氮氧化物和二氧化硫等空气污染物方面受到了广泛关注。本文讨论了脉冲放电等离子体中氮氧化物的去除机理。发射光谱诊断表明,放电电压越高,氮氧化物的去除量越多,并转化为氧、氮、氮气、二氧化氮等。等离子体电子温度T(e)在2.4 kV放电电压下为6400 K,在4.8 kV时为9500 K。建立零维化学反应动力学模型后,明确了主要反应路径:放电过程中氮氧化物通过电子碰撞解离为氮和氧,随后在放电期间及之后,氮在氮氧化物上进行单取代形成氮气,相比之下,通过氧化氮形成的二氧化氮占比小。反应方向可通过添加氮气进行调整,最佳氮气/氮氧化物混合比为2∶1。该比例不仅弥补了混合氮气对电子竞争消耗的不利影响,还通过加速氮氧化物氧化过程提高了氮氧化物的总去除程度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/255b/3967449/2c58aafb22f3/TSWJ2014-653576.001.jpg

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