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LAMINAR FLAME SPEED MEASUREMENTS AND MODELING OF ALKANE BLENDS AT ELEVATED PRESSURES WITH VARIOUS DILUENTS

机译:具有各种稀释剂的升高压力下烷烃混合物的层状火焰速度测量和建模

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Laminar flame speeds at elevated pressure for methane-based fuel blends are important for refining the chemical kinetics that are relevant at engine conditions. The present paper builds on earlier measurements and modeling by the authors by extending the validity of a chemical kinetics mechanism to laminar flame speed measurements obtained in mixtures containing significant levels of helium. Such mixtures increase the stability of the experimental flames at elevated pressures and extend the range of laminar flame speeds. Two experimental techniques were utilized, namely a Bunsen burner method and an expanding spherical flame method. Pressures up to 10 arm were studied, and the mixtures ranged from pure methane to binary blends of CH_4/C_2H_6 and CH_4/C_3H_8. In the Bunsen flames, the data include elevated initial temperatures up to 650 K. There is generally good agreement between model and experiment, although some discrepancies still exist with respect to equivalence ratio for certain cases. A significant result of the present study is that the effect of mixture composition on flame speed is well captured by the mechanism over the extreme ranges of initial pressure and temperature covered herein. Similarly, the mechanism does an excellent job at modeling the effect of initial temperature for methane-based mixtures up to at least 650 K.
机译:甲烷基燃料混合物高压下的层状火焰速度对于精炼在发动机条件相关的化学动力学是重要的。本文通过将化学动力学机制的有效性扩展到含有显着水平氦的混合物中获得的层状火焰速度测量来构建提前的测量和建模。这种混合物在升高的压力下提高了实验火焰的稳定性,并延长了层状火焰速度的范围。利用了两种实验技术,即Bunsen燃烧器方法和扩张的球形火焰方法。研究高达10臂的压力,并将混合物从纯甲烷范围为CH_4 / C_2H_6和CH_4 / C_3H_8的二元共混物。在Bunsen火焰中,数据包括高达650 K的初始温度。模型和实验之间通常存在良好的一致性,尽管某些情况相对于等效率仍然存在一些差异。本研究的显着结果是,通过在本文覆盖的初始压力和温度的极端范围内的机制很好地捕获了混合物组合物对火焰速度的影响。类似地,该机制在为甲烷基混合物的初始温度的效果建模至至少650k的情况下进行了优异的工作。

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