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The connection between NO_x and soot in oxygen- enriched propane flames

机译:富氧丙烷火焰中NO_x和烟灰之间的联系

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Soot and nitrogen oxide are two harmful pollutants that are formed during combustion and strict emission legislation continues to motivate research on how they can be controlled. The current paper investigates how the formation of nitrogen oxide and soot is influenced by increasing the oxygen content in the oxidizer. Propane is combusted (80 kWth) applying oxygen-enriched air. In-flame measurement of temperature as well as soot and gas concentrations are performed with a combination of intrusive and non-intrusive equipment. The results show that increasing the oxygen content in the oxidizer from 21% to 27% increases the formation of nitrogen oxide while soot formation remains relatively low. At 30% however, soot formation increases by order of magnitudes and the emission of nitrogen oxide drops significantly. Detailed reaction modeling is performed and the shift in soot formation is captured by the model. Although the exact reason for the shift is not completely understood, the model shows that for a flame after the shift, soot inception initiates earlier in an environment where the concentration of acetylene and PAHs are relatively high, leading to fast surface growth. High temperatures in the early combustion sequence caused by higher oxygen content is believed to be the controlling factor, rather than the increased oxygen content itself.
机译:烟尘和氮氧化物是燃烧过程中形成的两种有害污染物,严格的排放法规继续激励人们研究如何控制它们。目前的论文研究了如何通过增加氧化剂中的氧含量来影响氮氧化物和烟灰的形成。使用富氧空气燃烧丙烷(80千瓦时)。使用侵入式和非侵入式设备进行火焰温度测量以及烟尘和气体浓度的测量。结果表明,将氧化剂中的氧气含量从21%增加到27%会增加氮氧化物的形成,而烟灰的形成仍然相对较低。但是,在30%时,烟灰的形成会增加一个数量级,并且氮氧化物的排放量会大大下降。进行详细的反应建模,并通过模型捕获烟灰形成的变化。尽管尚未完全了解转变的确切原因,但该模型显示,对于转变后的火焰,在乙炔和PAHs浓度相对较高的环境中,烟灰开始较早地开始,从而导致表面快速生长。据信由较高的氧气含量引起的燃烧早期阶段的高温是控制因素,而不是增加的氧气含量本身。

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