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Plasma Enhanced Combustion using Microwave Energy Coupling in a Re-entrant Cavity Applicator

机译:使用微波能量耦合在重热腔施加器中的等离子体增强燃烧

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An atmospheric compact high-Q microwave applicator is used to couple electromagnetic energy directly into the reaction zone of a premixed laminar methane-oxygen flame for energetic enhancement. At low microwave powers (1 to 5 W), the flame is influenced by an electromagnetic field only. As power is increased, the reactive gases in the flame break down and ionize into a plasma plume with significant increase in the flammability limit. 2-D laser induced fluorescence imaging of hydroxyl radicals (OH) is conducted in the reaction zone over this transition, as well as spectrally resolved flame emission measurements to monitor excited state species and derive rotational temperatures using OH chemiluminescence. Measurements are made for two equivalence ratios (ф= 0.9 and 1.1) and two gas flow rates (60 sccm and 100 sccm). In the electromagnetic field only phase (1 to 5 W), flame stability, excited state species, and temperature slightly increased with power while no significant change in OH radicals was detected. With the onset of a plasma plume, a significant rise in both excited state species and OH radical number density was observed.
机译:大气紧凑的高Q微波涂抹器用于将电磁能直接耦合到预混层甲烷 - 氧气火焰的反应区中,以进行精力充电。在低微波功率(1至5 W),火焰仅受电磁场的影响。随着功率的增加,火焰中的反应气体分解并电离成等离子体羽流,随着易燃限度的显着增加。在该转变上,在反应区中进行羟基激光诱导的羟基激光诱导荧光成像,以及光谱分辨的火焰发射测量,以监测激发的状态物种,并使用OH化学发光来衍生旋转温度。测量是针对两个等效比(Ф= 0.9和1.1)和两个气流速率(60 sccm和100 sccm)进行的。在电磁场中仅相位(1至5 W),火焰稳定性,激发状态物种和温度随功率略微增加,而检测到OH基团没有显着变化。随着等离子体羽流的开始,观察到激发态物种和OH基团数密度的显着升高。

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