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CARS thermometry studies of plasma assisted combustion in ethylene-air and hydrogen-air mixtures and of a dielectric barrier discharge actuator.

机译:对乙烯-空气和氢气-空气混合物中的等离子体辅助燃烧以及介电势垒放电执行器进行CARS测温研究。

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摘要

Pure rotational CARS thermometry is used to study low-temperature plasma assisted oxidation kinetics in ethylene-air and hydrogen-air mixtures at stoichiometric and fuel lean conditions at 40 Torr pressure. Air and fuel-air mixtures are excited by a burst of high voltage nanosecond pulses at a pulse repetition rate of 40 kHz and a burst repetition rate of 10 Hz. The number of pulses in the burst is varied from a few pulses to a few hundred pulses and the results are compared with a fuel-air plasma chemistry model developed at The Ohio State University. Air and all fuel-air mixtures are found to agree well with the model.;In ethylene-air mixtures, it is found that the heating rate is much faster than in air plasmas, primarily due to energy release in exothermic reactions of fuel with O atoms generated by the plasma. It is also found that the initial heating rate in ethylene-air mixtures is independent of equivalence ratio and is mainly controlled by the rate of radical production, specifically O atoms. At long burst durations, the heating rate in the lean mixture is significantly reduced when all of the ethylene is oxidized.;In hydrogen-air mixtures, it is found that the heating rate is much faster than in air plasmas, primarily due to the heat release from reactions hydrogen with H and O atoms generated by the plasma. The pure rotational CARS temperature measurements also show a maximum in temperature after approximately 17 ms in the &phis;=1.0 and &phis;=0.5 mixtures, which is indicative of ignition. Sensitivity analysis shows that radicals generated by the plasma are important for low temperature plasma chemical fuel oxidation and associated heat release. It also shows that ignition is primarily controlled by the chain branching sequence O + H2 → OH + H and H + O2 → OH + O.;Pure rotational CARS thermometry is also used to study a dielectric barrier discharge. It is found that in the plane to plane configuration, there is no detectable temperature rise, most likely due to the filaments moving from pulse to pulse, making it impossible to get the CARS beams into the filament. This issue is solved by using a floating electrode on the ground electrode to stabilize a filament. To ensure that the CARS beams are in a filament, for every spectrum a corresponding image is taken. Temperature measurements are taken at varying times after a 50 pulse burst and at short times after the burst (100 ns to 1 mus) there is approximately a 35 K increase from room temperature, while at longer times (10--100 mus) a 25 K increase is seen.
机译:纯旋转CARS测温法用于研究在40 Torr压力下在化学计量和燃料稀薄条件下乙烯-空气和氢气-空气混合物中的低温等离子体辅助氧化动力学。空气和燃料-空气混合物被高压纳秒脉冲群以40 kHz的脉冲重复频率和10 Hz的脉冲重复频率激发。脉冲中的脉冲数从几个脉冲到几百个脉冲不等,并将结果与​​俄亥俄州立大学开发的燃料-空气等离子体化学模型进行比较。发现空气和所有燃料-空气混合物与模型非常吻合;在乙烯-空气混合物中,发现加热速率比空气等离子体快得多,这主要是由于燃料与O放热反应中释放的能量等离子体产生的原子。还发现,乙烯-空气混合物中的初始加热速率与当量比无关,并且主要由自由基产生的速率,特别是O原子的速率控制。在长脉冲持续时间下,当所有乙烯都被​​氧化时,贫油混合物中的加热速率会大大降低。;在氢气-空气混合物中,发现加热速率比空气等离子体中的加热速率快得多,这主要是由于热量从反应中释放氢与等离子体产生的H和O原子。纯旋转CARS温度测量值还在φ= 1.0和φ= 0.5的混合物中经过约17毫秒后显示出最高温度,这表明着火了。敏感性分析表明,等离子体产生的自由基对于低温等离子体化学燃料氧化和相关的热释放非常重要。这也表明,点火主要受链支链顺序O + H2→OH + H和H + O2→OH + O的控制。纯旋转CARS测温法还用于研究介电势垒放电。发现在平面到平面的配置中,没有可检测到的温度升高,这很可能是由于灯丝从一个脉冲移动到另一个脉冲,使得不可能使CARS光束进入灯丝。通过在接地电极上使用浮动电极来稳定灯丝,可以解决此问题。为了确保CARS光束处于灯丝中,对于每个光谱都拍摄相应的图像。在50个脉冲突发后的不同时间进行温度测量,并且在突发后的短时间内(100 ns至1 mus)进行温度测量,与室温相比大约增加35 K,而在较长时间(10--100 mus)则为25可以看到K增加。

著录项

  • 作者

    Zuzeek, Yvette Marie.;

  • 作者单位

    The Ohio State University.;

  • 授予单位 The Ohio State University.;
  • 学科 Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 151 p.
  • 总页数 151
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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