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首页> 外文期刊>Plasma Chemistry and Plasma Processing >Conversion of NO in NO/N-2, NO/O-2/N-2, NO/C2H4/N-2 and NO/C2H4/O-2/N-2 systems by dielectric barrier discharge plasmas
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Conversion of NO in NO/N-2, NO/O-2/N-2, NO/C2H4/N-2 and NO/C2H4/O-2/N-2 systems by dielectric barrier discharge plasmas

机译:通过介电势垒放电等离子体在NO / N-2,NO / O-2 / N-2,NO / C2H4 / N-2和NO / C2H4 / O-2 / N-2系统中进行NO转化

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An experimental study on the conversion of NO in the NO/N-2, NO/O-2/N-2, NO/C2H4/N-2 and NO/C2H4/O-2/N-2 systems has been carried out using dielectric barrier discharge (DBD) plasmas at atmospheric pressure. In the NO/N-2 system, NO decomposition to N-2 and O-2 is the dominating reaction; NO conversion to NO2 is less significant. O-2 produced from NO decomposition was detected by an on-line mass spectrometer. With the increase of NO initial concentration, the concentration of O-2 produced decreases at 298 K, but slightly increases at 523 K. In the NO/O-2/N-2 system, NO is mainly oxidized to NO2, but NO conversion becomes very low at 523 K and over 1.6% of O-2. In the NO/C2H4/N-2 system, NO is reduced to N-2 with about the same NO conversion as that in the NO/N-2 system but without NO2 formation. In the NO/C2H4/O-2/N-2 system, the oxidation of NO to NO2 is dramatically promoted. At 523 K, with the increase of the energy density, NO conversion increases rapidly first, and then almost stabilizes at 93-91% of NO conversion with 61-55% of NO2 selectivity in the energy density range of 317-550 J L(-1)supercript stop. It finally decreases gradually at high energy density. A negligible amount of N2O is formed in the above four systems. Of the four systems studied, NO conversion and NO2 selectivity of the NO/C2H4/O-2/N-2 system are the highest, and NO/O-2/C2H4/N-2 system has the lowest electrical energy consumption per NO molecule converted.
机译:进行了NO / N-2,NO / O-2 / N-2,NO / C2H4 / N-2和NO / C2H4 / O-2 / N-2系统中NO转化的实验研究。在大气压下使用电介质阻挡层放电(DBD)等离子体。在NO / N-2系统中,NO分解为N-2和O-2是主要反应。 NO转化为NO2的意义不大。通过在线质谱仪检测由NO分解产生的O-2。随着NO初始浓度的增加,产生的O-2浓度在298 K时降低,但在523 K时略有增加。在NO / O-2 / N-2系统中,NO主要被氧化成NO2,但NO转化在523 K时变得非常低,超过O-2的1.6%。在NO / C2H4 / N-2系统中,NO还原成N-2的NO转化率与NO / N-2系统中的NO转化率相同,但没有形成NO2。在NO / C2H4 / O-2 / N-2系统中,NO氧化为NO2的能力大大提高。在523 K下,随着能量密度的增加,NO转化率首先迅速增加,然后在317-550 JL(-)的能量密度范围内几乎稳定在NO转化率的93-91%,NO2选择性为61-55%。 1)超级密码停止。最终在高能量密度下逐渐减小。在上述四个系统中形成的N2O量可忽略不计。在所研究的四个系统中,NO / C2H4 / O-2 / N-2系统的NO转化率和NO2选择性最高,而NO / O-2 / C2H4 / N-2系统的单位NO能耗最低分子转化。

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