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Nitric oxide decomposition using atmospheric pressure dielectric barrier discharge reactor with different adsorbents

机译:使用具有不同吸附剂的大气压介质阻挡放电反应器分解一氧化氮

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摘要

A cycled adsorption-desorption and decomposition process (ADD) for removing NOx was designed and performed using a dielectric barrier discharge (DBD) reactor filled with NaY zeolite or activated carbon as adsorbent at ambient temperature. Simulated flue gas was introduced into the DBD reactor for adsorption (T-a). Non-thermal plasma (NTP) was applied to detach and decompose the adsorbed NO for a specific period (T-d). Some key operating conditions (adsorbent materials, discharge power, Td, and so on) were investigated to optimize the ADD process, and the effects of H2O and O-2 were also studied. NO conversion, NO2 formation, and energy efficiency of different NTP-assisting DeNO(x) technologies were compared. The experimental results demonstrated that an NO removal rate of 99% was obtained on NaY zeolite at an energy efficiency of 99.4 g NO per kW h using the ADD process.
机译:在环境温度下,使用填充有NaY沸石或活性炭作为吸附剂的介质阻挡放电(DBD)反应器,设计并执行了用于去除NOx的循环吸附-解吸和分解过程(ADD)。将模拟烟气引入DBD反应器进行吸附(T-a)。应用非热等离子体(NTP)在特定时间段(T-d)分离和分解吸附的NO。研究了一些关键操作条件(吸附材料,放电功率,Td等)以优化ADD工艺,并研究了H2O和O-2的影响。比较了不同NTP辅助DeNO(x)技术的NO转化,NO2形成和能效。实验结果表明,使用ADD工艺在NaY沸石上以99.4 g NO / kWh的能量效率可获得99%的NO去除率。

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