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首页> 外文期刊>Aerospace science and technology >Experimental investigation on gliding arc discharge plasma ignition and flame stabilization in scramjet combustor
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Experimental investigation on gliding arc discharge plasma ignition and flame stabilization in scramjet combustor

机译:超燃燃烧室滑行电弧放电等离子体点火和火焰稳定的实验研究

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摘要

Ignition and flame stability in supersonic flow have always been the key problems of research in scramjet. In addition, ignition is difficult and the cavity flameholder is susceptible to support the flame stability under extreme conditions such as low equivalent ratio. In recent years, gliding arc plasma is recognized to expand ignition and extinction limit with lower energy consumption in the field of plasma assisted ignition due to its heating and chemical effects. In this paper, a gliding arc igniter has been designed and compared with the traditional spark plug in order to quantify the ignition ability. The igniter has the same size with the spark plug, using low-power AC gliding arc to carry out ethylene ignition test in Ma = 2.52 Ma supersonic flow. The average power of gliding arc discharge is 1199 W. A high-speed camera and CH⁎chemiluminescence were used to make combustion diagnosis. Founded in the same discharge period, the lean ignition limit of the gliding arc is lower than the ignition limit of the spark. The average expansion of ethylene ignition limit is 17%. The ignition process is that gliding arc continues to generate the initial flame kernels during the discharge period, but it is extinguished continuously due to the strong convection. Until generating an initial flame kernel which can successfully propagate the flame. The ignition process can be divided into four stages. It continues to generate new flame kernels in flame propagation process. Gliding arc reignites the fuel and generates the new flame kernels after forming a stable flame, appearing intermittent ignition in the cavity. The high equivalent ratio can make ignition delay time shorter, generating initial flame kernels more frequently. The heating effect of the gliding arc and reignition character make the thermal product and ethylene occur intermittent combustion more often in the cavity, increasing the area of the combustion reaction. Gliding arc plasma can achieve combustion enhancement during the flame stabilization process. The shear layer of flame thickness increased by the average of 2 mm on S-B-1 and G-B-1 conditions. Compared with the traditional spark ignition, gliding arc broaden the lean blow-off limit in different stages may be the significant reason for broadening lean ignition limit. It concludes that gliding arc makes the flame's ignition limit closer to the flame's blow-off limit.
机译:超声速流动中的点火和火焰稳定性一直是超燃冲压发动机研究的关键问题。另外,点火困难并且空腔火焰保持器易于在极端条件下(例如低当量比)支撑火焰稳定性。近年来,由于等离子辅助点火技术的加热和化学作用,它被认为在降低等离子辅助点火领域中的能量消耗的同时扩大了点火和消光极限。本文设计了一种滑动式电弧点火器,并将其与传统的火花塞进行比较,以量化其点火能力。该点火器的尺寸与火花塞相同,使用低功率AC滑动电弧在Ma = 2.52 Ma超音速流中进行乙烯点火测试。滑弧放电的平均功率为1199W。使用高速摄像头和CH⁎化学发光进行燃烧诊断。建立在相同的放电周期内,滑行电弧的稀薄点火极限低于火花的点火极限。乙烯燃烧极限的平均膨胀为17%。点火过程是在放电期间,滑行电弧继续产生初始的火焰核,但是由于强对流,滑行电弧持续熄灭。直到生成可以成功传播火焰的初始火焰核。点火过程可分为四个阶段。它在火焰传播过程中继续产生新的火焰核。滑弧在形成稳定的火焰后重燃燃料并生成新的火焰核,在型腔中出现间歇性点火。高当量比可使点火延迟时间更短,从而更频繁地产生初始火焰核。滑弧的加热作用和重燃特性使热产物和乙烯在腔体内更频繁地发生间歇燃烧,从而增加了燃烧反应的面积。滑动电弧等离子体可在火焰稳定过程中实现燃烧增强。在S-B-1和G-B-1条件下,火焰厚度的剪切层平均增加了2 mm。与传统的火花点火相比,滑弧在不同阶段扩大稀薄燃尽极限可能是扩大稀薄点火极限的重要原因。结论是,滑动电弧使火焰的点火极限更接近于火焰的吹扫极限。

著录项

  • 来源
    《Aerospace science and technology》 |2018年第8期|145-153|共9页
  • 作者单位

    Science and Technology on Plasma Dynamics Laboratory, Air Force Engineering University;

    Science and Technology on Plasma Dynamics Laboratory, Air Force Engineering University;

    Science and Technology on Plasma Dynamics Laboratory, Air Force Engineering University;

    Science and Technology on Scramjet Laboratory, National University of Defence Technology;

    Science and Technology on Scramjet Laboratory, National University of Defence Technology;

    Science and Technology on Scramjet Laboratory, National University of Defence Technology;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Gliding arc; Supersonic flow; Lean ignition limit; Ignition process; Flame stabilization;

    机译:滑弧;超音速流动;稀燃极限;点火过程;火焰稳定;

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