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Liquid Fuel Emulsion Jet-in-Crossflow Penetration and Dispersion Under High Pressure Conditions.

机译:液体燃料乳液在高压条件下的射流贯流渗透和扩散。

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摘要

The current work focuses on the jet-in-crossflow penetration and dispersion behavior of water-in-oil emulsions in a high pressure environment. Both fuel injection strategies of using a water-in-oil emulsion and a jet-in-crossflow have demonstrated unique benefits in improving gas turbine performance from an emissions and efficiency standpoint. A jet-in-crossflow is very practical for use in gas turbine engines, rocket propulsion, and aircraft engines since it utilizes already available crossflow air to atomize fuel. Injecting water into a combustion chamber in the form of a water-in-oil emulsion allows for pollutant emissions reduction while reducing efficiency loses that may result from using a separate water or steam injection circuit. Dispersion effects on oil droplets are expected, therefore investigating the distribution of both oil and water droplets in the crossflow is an objective in this work. Understanding the synchronization and injection behavior of the two strategies is of key interest due to their combined benefits. A water-to-oil ratio and an ambient pressure parameter are developed for emulsion jet-in-crossflow trajectories. To this end, a total of 24 emulsion jet-in-crossflow tests were performed with varying ambient pressures of 2-8 atm and momentum flux ratios of 50, 85, and 120. Sobel edge filtering was applied to each averaged image obtained from a high speed video of each test case. Averaged and filtered images were used to resolve top and bottom edges of the trajectory in addition to the overall peak intensity up to 40 mm downstream of the injection point. An optimized correlation was established and found to differ from literature based correlations obtained under atmospheric pressure conditions. Overall it was found that additional parameters were not necessary for the top edge and peak intensity correlations, but a need for a unique emulsion bottom edge and width trajectory correlation was recognized. In addition to investigating emulsion jet-in-crossflow trajectory correlations, a unique Dual Planar Laser Induced Fluorescence (Dual-PLIF) method was applied for the first time on emulsions at elevated pressure conditions. From the Dual-PLIF results, qualitative observations provided insight into the unique dispersion of oil and water concentrations within a cross-sectional plane down stream of the jet-in-crossflow injection.
机译:目前的工作集中在高压环境中油包水型乳剂的射流错流渗透和分散行为。从油耗和效率的角度来看,使用油包水乳状液和错流射流的两种燃料喷射策略均显示出在改善燃气轮机性能方面的独特优势。射流交叉流非常适用于燃气涡轮发动机,火箭推进器和飞机发动机,因为它利用已经可用的横流空气来雾化燃料。以油包水乳状液的形式将水注入燃烧室可减少污染物排放,同时减少因使用单独的水或蒸汽注入回路而导致的效率损失。预期会对油滴产生分散作用,因此,研究横流中油滴和水滴的分布是这项工作的目标。由于这两种策略的共同优点,因此了解这两种策略的同步和注入行为至关重要。开发了水油比和环境压力参数以用于乳状液横向喷射射流轨迹。为此,在2-8 atm的变化环境压力和50、85和120的动量通量比变化的条件下,总共进行了24次乳剂错流测试。将Sobel边缘滤波应用于从每个测试案例的高速视频。除了在注射点下游直至40 mm的总峰值强度外,平均和滤波后的图像还用于解析轨迹的顶部和底部边缘。建立了优化的相关性,发现与在大气压力条件下获得的基于文献的相关性不同。总的来说,发现顶部边缘和峰强度相关性不需要附加参数,但是认识到需要独特的乳剂底部边缘和宽度轨迹相关性。除了研究乳液在横流中的射流轨迹相关性外,还首次在高压条件下对乳液进行了独特的双平面激光诱导荧光(Dual-PLIF)方法。根据Dual-PLIF的结果,定性观察提供了深入了解在横流喷射下游横截面内油和水浓度的独特分布。

著录项

  • 作者

    Gomez, Guillermo Andres.;

  • 作者单位

    University of California, Irvine.;

  • 授予单位 University of California, Irvine.;
  • 学科 Engineering Mechanical.;Energy.;Engineering Aerospace.
  • 学位 M.S.
  • 年度 2014
  • 页码 169 p.
  • 总页数 169
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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