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Study of Humidity Effect on Benzene Decomposition by the Dielectric Barrier Discharge Nonthermal Plasma Reactor

机译:介质阻挡放电非热等离子体反应器对苯分解的​​湿度影响研究

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The humidity effects on the benzene decomposition process were investigated by the dielectric barrier discharge (DBD) plasma reactor. The results showed that the water vapor played an important role in the benzene oxidation process. It was found that there was an optimum humidity value for the benzene removal efficiency, and at around 60% relative humidity (RH), the optimum benzene removal efficiency was achieved. At a SIE of 378 J/L, the removal efficiency was 66% at 0% RH, while the removal efficiency reached 75.3% at 60% RH and dropped to 69% at 80% RH. Furthermore, the addition of water inhibited the formation of ozone and NO2 remarkably. Both of the concentrations of ozone and NO2 decreased with increasing of the RH at the same specific input energy. At a SIE of 256 J/L, the concentrations of ozone and NO2 were 5.4 mg/L and 1791 ppm under dry conditions, whereas they were only 3.4 mg/L and 1119 ppm at 63.5% RH, respectively. Finally, the outlet gas after benzene degradation was qualitatively analyzed by FT-IR and GC-MS to determine possible intermediate byproducts. The results suggested that the byproducts in decomposition of benzene primarily consisted of phenol and substitutions of phenol. Based on these byproducts a benzene degradation mechanism was proposed.
机译:通过介质阻挡放电(DBD)等离子体反应器研究了湿度对苯分解过程的影响。结果表明,水蒸气在苯氧化过程中起重要作用。发现对于苯去除效率存在最佳湿度值,并且在约60%相对湿度(RH)下,达到了最佳苯去除效率。在378 J / L的SIE下,在0%RH下的去除效率为66%,而在60%RH下的去除效率达到75.3%,在80%RH时下降到69%。此外,添加水显着抑制了臭氧和NO 2的形成。在相同的比输入能量下,随着RH的增加,臭氧和NO2的浓度均降低。在256 J / L的SIE下,干燥条件下的臭氧和NO2浓度分别为5.4 mg / L和1791 ppm,而在63.5%RH时分别仅为3.4 mg / L和1119 ppm。最后,通过FT-IR和GC-MS定性分析了苯降解后的出口气体,以确定可能的中间副产物。结果表明,苯分解中的副产物主要由苯酚和苯酚的取代组成。基于这些副产物,提出了苯降解机理。

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