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Investigation on the characteristics of dielectric barrier discharge in methane with parallel-plate and multi needle-plate electrode in low pressure

机译:平行板和多针板电极在低压下甲烷中介电势垒放电特性的研究

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Summary form only given. Non-equilibrium plasma-assisted combustion has been extensively studied over the last few decades and has shown promising effects on combustion controlling, such as reducing ignition delay time, increasing flame propagation speed, enhancing flame stabilization and so on. In this paper, we investigated on the characteristics of dielectric barrier discharge (DBD) in methane with parallel-plate and multi-needle-to-plate electrodes under low pressure with sinusoidal waveform (20 kHz, 0-30 kV) power supply. A mechelle spectrometer (Mechelle 5000, Andor) is used to capture the plasma spectra. The results show that the discharge produces abundant active components related to combustion, such as CH (λ=392.5, 430.1, 438.7, 440.9nm), and C2 (A=473.6nm) in the excited level. Temperature of the active particles is calculated by LIFBASE software and platinum-rhodium thermocouple. With the increasing of applied voltage, the gas temperature and the number and average energy of the high-energy electrons are increased, leading to more free particles which are in the excited state, and finally the corresponding emission spectrum intensity is enhanced. Under the same gas pressure and electrode gap except for generation by different the electrode structure, the temperature of gas in multi needle-plate electrode is lower than plate-plate electrode. And it is proven that multi needles in a honeycomb structure layout can be made in more stable discharge, which can be used in sub-atmospheric even under atmospheric pressure, and it is better for plasma-assisted combustion application.
机译:仅提供摘要表格。在过去的几十年中,对非平衡等离子体辅助燃烧进行了广泛的研究,并显示出对燃烧控制的有希望的效果,例如减少点火延迟时间,增加火焰传播速度,增强火焰稳定性等。在本文中,我们研究了在正弦波波形(20 kHz,0-30 kV)电源下,带有平行板电极和多针对板电极的甲烷中甲烷的介质阻挡放电(DBD)的特性。麦克尔光谱仪(Mechelle 5000,Andor)用于捕获等离子体光谱。结果表明,放电产生了与燃烧有关的丰富的活性成分,例如激发水平的CH(λ= 392.5、430.1、438.7、440.9nm)和C2(A = 473.6nm)。活性颗粒的温度通过LIFBASE软件和铂铑热电偶计算。随着施加电压的增加,气体温度和高能电子的数量及平均能量增加,导致更多的处于激发态的自由粒子,最终增强了相应的发射光谱强度。在相同的气压和电极间隙下,除了通过不同的电极结构产生外,多针板式电极中的气体温度均低于板式电极。事实证明,蜂窝状结构的多针可更稳定地排出,即使在大气压下也可用于大气压以下,更适合等离子辅助燃烧应用。

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