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Kinetic effects of non-equilibrium plasma-assisted methane oxidation on diffusion flame extinction limits

机译:非平衡等离子体辅助甲烷氧化对扩散火焰消光极限的动力学影响

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The kinetic effects of low temperature non-equilibrium plasma assisted CH_4 oxidation on the extinction of partially premixed methane flames was studied at 60 Torr by blending 2% CH_4 by volume into the oxi-dizer stream of a counterflow system. The experiments showed that non-equilibrium plasma can dramatically accelerate the CH_4 oxidation at low temperature. The rapid CH_4 oxidation via plasma assisted combustion resulted in fast chemical heat release and extended the extinction limits significantly. Furthermore, experimental results showed that partial fuel mixing in the oxidizer stream led to a dramatic decrease of O concentration due to its rapid consumption by CH_4 oxidation at low temperature. The products of plasma assisted CH_4 oxidation were measured using the Two-photon Absorption Laser-Induced Fluorescence (TAUF) method (for atomic oxygen, O), Fourier Transform Infrared (FT1R) spectroscopy, and Gas Chromatography (GC). The product concentrations were used to validate the plasma assisted combustion kinetic model. The comparisons showed the kinetic model over-predicted the CO, H_2O and H_2 concentrations and under-predicted CO_2 concentration. A path flux analysis showed that 0 generated by the plasma was the critical species for extinction enhancement. In addition, the results showed that 0 was produced mainly by direct electron impact dissociation reactions and the collisional dissociation reactions of electronically excited molecules with O_2. Moreover, these reactions involving electron impact and excited species collisional dissociation of CH_4 contributed approximately a mole fraction of 0.1 of total radical production. The present experiments produced quantitative species and extinction data of low temperature plasma assisted combustion to constrain the uncertainties in plasma/flame kinetic models.
机译:通过将2%(体积)的CH_4混合到逆流系统的氧化器气流中,研究了低温非平衡等离子体辅助CH_4氧化对部分预混合甲烷火焰的熄灭的动力学效应。实验表明,非平衡等离子体可以在低温下显着加速CH_4的氧化。通过等离子体辅助燃烧的快速CH_4氧化导致化学物质的快速释放,并大大延长了消光极限。此外,实验结果表明,由于氧化剂在低温下被CH_4氧化迅速消耗,氧化剂流中的部分燃料混合导致O浓度急剧下降。使用双光子吸收激光诱导荧光(TAUF)方法(用于原子氧,O),傅立叶变换红外(FT1R)光谱和气相色谱(GC)测量等离子体辅助CH_4氧化的产物。产品浓度用于验证等离子体辅助燃烧动力学模型。比较表明动力学模型高估了CO,H_2O和H_2的浓度,而低估了CO_2的浓度。路径通量分析表明,等离子体产生的0是增强灭绝的关键物种。此外,结果表明,0的产生主要是由于直接电子碰撞解离反应和电子激发分子与O_2的碰撞解离反应所致。此外,这些涉及电子撞击和CH_4的受激物种碰撞解离的反应贡献了总自由基产生量的0.1左右的摩尔分数。本实验产生了低温等离子体辅助燃烧的定量物种和消光数据,以约束等离子体/火焰动力学模型的不确定性。

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