首页> 外文会议>Conference on Laser Technology VII: Applications of Lasers Sep 23-27, 2002 Szczecin-Swinoujscie, Poland >Application of LIF technique for the space- and time-resolved monitoring of pollutant gas decomposition in non-thermal plasma reactors
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Application of LIF technique for the space- and time-resolved monitoring of pollutant gas decomposition in non-thermal plasma reactors

机译:LIF技术在非热等离子体反应器中时空分解监测污染物气体分解中的应用

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Laser-induced fluorescence (LIF) technique aided by intensified CCD light signal detection and fast digital image processing is demonstrated to be a useful diagnostic method for in-situ observation of the discharge-induced plasma-chemistry processes responsible for NO_x (NO + NO_2) decomposition occurring in non-thermal plasma reactors. In this paper a method and results of the LIF measurement of two-dimensional distribution of the ground-state NO molecule density inside a DC positive streamer corona reactor during NO removal from a flue gas simulator [air/NO(up to 300 ppm)] are presented. Either a needle-to-plate or nozzle-to-plate electrode system, having an electrode gap of 30-50 mm was used for generating the corona discharge in the reactor. The LIF monitoring of NO molecules was carried out under the steady-state DC corona discharge condition. The laser-induced fluorescence on the transition NO X~2Π(v"=0)←A~2Σ~+(v'=0) at λ=226nm was chosen for monitoring ground-state NO molecules in the reactor. This transition was induced by irradiation of the NO molecules with UV laser pulses generated by a laser system consisted of a XeF excimer laser, dye laser and BBO crystal. The laser pulses from the XeF excimer laser (Lambda Physik, Compex 150, λ=351 nm) pumped the dye laser (Lambda Physik, Scanmate) with Coumarin 47 as a dye, which generated the laser beam of a wavelength tuned around λ=450 nm. Then, the tuned dye laser beam pumped the BBO crystal in which the second harmonic radiation of a wavelength correspondingly tuned around λ=226 nm was generated. The 226-nm UV laser pulses of energy of 0.8-2 mJ and duration of about 20 ns were transformed into the form of the so-called laser sheet (width of 1 mm, height of 30-50 mm) which passed between the electrodes through the operating gas. The obtained results, presented in the form of images, which illustrated the two-dimensional distributions of NO molecule concentration in the non-thermal reactor, showed that the corona discharge-induced removal of NO molecules occurred not only in the vicinity of the plasma region formed by the corona streamers and in the downstream region of the reactor but also in the upstream region of the reactor, i.e. before the flue gas simulator has entered the plasma region. This information, obtained owing to the LIF technique, is important for the understanding of the plasma-chemistry processes responsible for NO_x decomposition in non-thermal plasma reactors and for optimising their performance.
机译:激光诱导荧光(LIF)技术在增强CCD光信号检测和快速数字图像处理的辅助下被证明是一种有用的诊断方法,用于现场观察放电引起的等离子体化学过程,该过程负责NO_x(NO + NO_2)在非热等离子体反应器中发生分解。本文研究了从烟气模拟器中脱除NO时直流正流电晕电晕反应器内基态NO分子密度的二维分布的LIF测量方法和结果[空气/ NO(最高300 ppm)]被提出。具有30-50mm的电极间隙的针对板或喷嘴对板电极系统用于在反应器中产生电晕放电。 NO分子的LIF监测是在稳态DC电晕放电条件下进行的。选择在λ= 226nm处的NO X〜2Π(v“ = 0)←A〜2Σ〜+(v'= 0)跃迁上的激光诱导荧光来监测反应堆中的基态NO分子。由XeF受激准分子激光器,染料激光器和BBO晶体组成的激光系统产生的UV激光脉冲对NO分子的辐照引起,由XeF受激准分子激光器(Lambda Physik,Compex 150,λ= 351 nm)泵浦产生染料激光器(Lambda Physik,Scanmate),以香豆素47作为染料,产生波长在λ= 450 nm附近调谐的激光束,然后调谐的染料激光束泵浦BBO晶体,其中B晶体的二次谐波辐射为产生相应地在λ= 226 nm附近调谐的波长,将能量为0.8-2 mJ,持续时间约20 ns的226 nm UV激光脉冲转换成所谓的激光片形式(宽度1 mm,高度30-50毫米)通过工作气体在电极之间通过。所得结果以i的形式表示法师说明了非热反应堆中NO分子浓度的二维分布,结果表明,电晕放电引起的NO分子的去除不仅发生在电晕流束形成的等离子体区域附近,而且还发生在下游。在反应器的上游区域中,也可以在反应器的上游区域中,即在烟道气模拟器进入等离子体区域之前。通过LIF技术获得的该信息对于理解负责非热等离子体反应器中NO_x分解的等离子体化学过程以及优化其性能非常重要。

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