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Changes in combustion behavior of liquid fuels due to the addition of small amounts of ammonia borane or nano aluminum.

机译:由于添加了少量氨硼烷或纳米铝,液体燃料燃烧行为的变化。

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摘要

Both ammonia borane and nano aluminum as additives to liquid fuels are investigated. Both fundamental droplet combustion experiments and experiments using an unstable liquid rocket combustor are used to study the effects these additives on the combustion behavior. The liquid fuels consist of ethanol and JP-8. The droplet experiments consist of both visual and OH high speed planar laser--induced fluorescence measurements. Simple combustion models are incorporated as well to provide further understanding. It is found that ammonia borane increases the regression rate of a single ethanol droplet. Evidence indicates that hydrogen gas is released throughout the combustion process of the droplet and influences the combustion behavior notably. Laser diagnostics indicate that changes in flame structure occur. The other components of ammonia borane affect the combustion behavior of the droplet, especially near the end of the droplet lifetime, causing the droplet to shatter. Nano aluminum has very little impact on the combustion behavior of single fuel droplets of JP-8 and ethanol. Nano aluminum is observed to combust only when a surfactant, Neodol, is present which produces gas generation and bubble formation within the droplet. Combustor experiments show similar trends as the droplet combustion experiments. Ammonia borane has a notable impact on the combustion stability of the system allowing it to be unstable for more combustor geometries. It is shown that ammonia borane addition produces a bimodal unsteady energy release within the combustor while the neat fuel does not. This combustion behavior allows for the increased amount of unstable combustor geometries. Nano aluminum has a small impact on the combustion stability of the system causing pressure oscillations to increase.
机译:研究了氨硼烷和纳米铝作为液体燃料的添加剂。基本的液滴燃烧实验和使用不稳定液体火箭燃烧器的实验都用于研究这些添加剂对燃烧行为的影响。液体燃料由乙醇和JP-8组成。液滴实验包括视觉和OH高速平面激光诱导的荧光测量。还引入了简单的燃烧模型以提供进一步的理解。发现氨硼烷增加了单个乙醇液滴的回归速率。有证据表明,氢气在液滴的整个燃烧过程中都会释放出来,并显着影响燃烧行为。激光诊断表明火焰结构发生了变化。氨硼烷的其他成分会影响液滴的燃烧行为,尤其是在液滴寿命即将结束时,导致液滴破碎。纳米铝对JP-8和乙醇的单个燃料小滴的燃烧行为影响很小。仅当存在表面活性剂Neodol时才会观察到纳米铝燃烧,该表面活性剂会在液滴内产生气体并形成气泡。燃烧器实验显示出与液滴燃烧实验相似的趋势。氨硼烷对系统的燃烧稳定性有显着影响,使其对于更多的燃烧室几何形状不稳定。结果表明,氨硼烷的加入会在燃烧室内产生双峰不稳定能量释放,而纯燃料则不会。这种燃烧行为允许增加不稳定的燃烧器几何形状的数量。纳米铝对系统的燃烧稳定性影响很小,导致压力振荡增加。

著录项

  • 作者

    Pfeil, Mark A.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Aerospace.
  • 学位 M.S.A.A.
  • 年度 2012
  • 页码 121 p.
  • 总页数 121
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:42:55

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