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Effects of the Fuel-Air Mixing on Combustion Instabilities and NOx Emissions in Lean Premixed Combustion.

机译:燃料-空气混合对稀薄预混燃烧中燃烧不稳定性和NOx排放的影响。

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摘要

An experimental study was conducted to investigate the effects of the fuel-air mixing on combustion instabilities and NOx emissions in lean premixed combustion. High speed PIV measurements in water were conducted to capture the mean and dynamic behavior of the cold flow generated by a 3X model of the tested premixer. High speed PLIF in water measurements were conducted to quantify the mean and unsteady fuel-air mixing at different momentum flux ratios. Atmospheric combustion tests using the original premixer, were conducted using natural gas and propane at the same momentum flux ratios of the PLIF mixing tests. An emissions analyzer was used to measure the emissions from combustion tests. Dynamic pressure transducers were used to measure the amplitude and the frequency of the dynamic pressure oscillations associated with the combustion instabilities. CHEMKIN-PRO was used to model the atmospheric combustion and predict NOx emissions at different conditions. Results showed that unsteady fuel-air mixing was concentrated at the center and near the outer edges of the premixer. These regions were characterized by high fuel concentration gradients. With the increase in the momentum flux ratio, the concentration gradient and the level of unsteady mixing increased, indicating that the fuel-air spatial unmixedness was the source of the unsteady mixing. It was found that local flow turbulence tended to decrease the concentration gradient through enhancing the fuel-air mixing, which resulted in decreasing the level of unsteady mixing. NOx emissions from atmospheric combustion increased with the increase in the momentum flux ratio due to the increase in the flame temperature and the fuel-air spatial and temporal unmixedness. The intensity of the combustion dynamics increased with the increase in the level of unsteady mixing. Axial injection of the fuel into the regions of strong unsteady mixing eliminated the combustion dynamics through damping the unsteady mixing. Results of CHEMKIN-PRO agreed very well with the experimental results and showed that the spatial and temporal unmixedness have a significant effect on NOx emissions for very lean combustion (F = 0.4). With the increase in the equivalence ratio, their relative contribution decreased.
机译:进行了一项实验研究,以研究燃料-空气混合对稀薄预混燃烧中的燃烧不稳定性和NOx排放的影响。在水中进行高速PIV测量以捕获由测试的预混器的3X模型生成的冷流的平均值和动态行为。在水测量中进行了高速PLIF,以量化在不同动量通量比下的平均和不稳定的燃料-空气混合。使用原始的预混合器进行的大气燃烧测试是在PLIF混合测试的动量通量比相同的情况下,使用天然气和丙烷进行的。排放分析仪用于测量燃烧测试的排放。动态压力传感器用于测量与燃烧不稳定性相关的动态压力振荡的幅度和频率。 CHEMKIN-PRO用于模拟大气燃烧并预测不同条件下的NOx排放。结果表明,不稳定的燃料-空气混合集中在预混合器的中心和外边缘附近。这些区域的特点是燃料浓度梯度高。随着动量通量比的增加,浓度梯度和不稳定混合水平增加,这表明燃料-空气空间不混合是不稳定混合的源头。发现局部湍流倾向于通过增强燃料-空气混合来降低浓度梯度,这导致降低了不稳定混合的水平。大气燃烧引起的NOx排放随着动量通量比的增加而增加,这是由于火焰温度的升高以及燃料-空气的空间和时间的不混合所致。燃烧动力学的强度随着不稳定混合水平的增加而增加。将燃料轴向注入到强烈的不稳定混合区域中,可以通过抑制不稳定混合来消除燃烧动力学。 CHEMKIN-PRO的结果与实验结果非常吻合,表明在稀薄燃烧中,时空混合对NOx排放有显着影响(F = 0.4)。随着当量比的增加,它们的相对贡献减小。

著录项

  • 作者

    Estefanos, Wessam S.;

  • 作者单位

    University of Cincinnati.;

  • 授予单位 University of Cincinnati.;
  • 学科 Engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 205 p.
  • 总页数 205
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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