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Influences of liquid fuel atomization and flow rate fluctuations on spray combustion instabilities in a backward-facing step combustor

机译:液体燃料雾化和流速波动对落后阶梯燃烧室喷涂燃烧不稳定性的影响

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摘要

Combustion instabilities occurring in spray combustion fields inside a backward facing step combustor have been investigated by performing large-eddy simulations (LES). In this study, the influence of fluctuations in the incoming oxidizer air velocity (caused by drastic pressure oscillations in the combustor during combustion instability) on the droplet diameter distribution (due to atomization) of the injected liquid fuel spray, as well as the influence of pressure oscillations on the fuel flow rate have been taken into consideration using appropriate models. For the temporal fluctuations in fuel droplet diameter distribution, a model for the Sauter Mean Diamter (SMD) of atomized droplets, obtained as a function of spray injection parameters and gas/liquid properties, is incorporated in the LES. Additionally, to consider the temporal fluctuations in fuel flow rate along with its phase difference with the pressure oscillations, a model derived from Bernoullis principle is proposed and employed in the LES. The objective is to examine in detail, the impacts of the fluctuations in fuel droplet diameter distribution and the fluctuations in fuel injection rate individually, as well as the impact of the mutual interaction of these two fluctuations, on the spray combustion instability characteristics. Results of the LES reveal that the temporal fluctuations in fuel droplet diameter distribution resulting from combustion instability, lead to a reduction in the intensity of pressure oscillations and hence the combustion instability's strength. Additionally, the temporal fluctuations in liquid fuel flow rate strongly influence the intensity of spray combustion instability, and it is observed that the combustion instability intensity increases with the increase in phase difference between the fuel flow rate fluctuations and pressure oscillations. Furthermore, the effect of the temporal fluctuations in fuel droplet diameter distribution resulting in the reduction of combustion instability intensity, becomes more pronounced as the phase shift between the fuel flow rate fluctuations and pressure oscillations becomes larger. It is clarified that the above-mentioned behavior of spray combustion instability, results from the change in the correlation between heat release rate fluctuations and pressure oscillations near the combustor's dump plane, which is caused by the change in the local residence time of fuel droplets and the local fuel droplet evaporation rate. (C) 2020 The Authors. Published by Elsevier Inc. on behalf of The Combustion Institute.
机译:通过执行大涡模拟(LES),研究了在后向阶梯燃烧器内部喷雾燃烧场中发生的燃烧不稳定性。在该研究中,在注入的液体燃料喷涂的液滴直径分布(由于雾化期间,由燃烧燃烧器中的燃烧器中的燃烧器中的剧烈压力振荡引起的影响)对液滴直径分布(由于雾化)的影响,以及影响使用适当的模型考虑了燃料流量的压力振荡。对于燃料液滴直径分布的时间波动,作为喷射注射参数和气体/液体性质的函数,作为喷雾注射参数和气/液体性能的函数的燃烧器平均直径(SMD)的模型。另外,为了考虑燃料流速的时间波动以及其与压力振荡的相位差,提出了伯努利原理的模型,并在LES中采用。目的是详细研究,燃料液滴直径分布的波动的影响和燃料喷射速率的波动,以及这两个波动的相互相互作用的影响,对喷射燃烧不稳定特性。 LES的结果表明,由燃烧不稳定产生的燃料液滴直径分布中的时间波动导致压力振荡强度降低,因此燃烧不稳定的强度。另外,液体燃料流量的时间波动强烈影响喷雾燃烧不稳定性的强度,并且观察到燃烧不稳定强度随着燃料流速波动和压力振荡之间的相位差的增加而增加。此外,随着燃料流量波动和压力振荡之间的相移变大,燃料液滴直径分布中的时间波动在燃料液滴直径分布中的效果变得更加明显。阐明了上述喷雾燃烧不稳定性的行为,由燃烧器倾卸平面附近的热释放速率波动和压力振荡之间的相关性的变化,这是由燃料液滴的局部停留时间的变化引起的局部燃料液滴蒸发速率。 (c)2020作者。由elsevier公司发布代表燃烧研究所。

著录项

  • 来源
    《Combustion and Flame》 |2020年第10期|337-356|共20页
  • 作者单位

    Kyoto Univ Dept Mech Engn & Sci Nishikyo Ku Kyoto 6158540 Japan;

    Kyoto Univ Dept Mech Engn & Sci Nishikyo Ku Kyoto 6158540 Japan;

    Kyoto Univ Dept Mech Engn & Sci Nishikyo Ku Kyoto 6158540 Japan;

    Kyoto Univ Dept Mech Engn & Sci Nishikyo Ku Kyoto 6158540 Japan;

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

    Spray combustion instability; Turbulent spray combustion; LES;

    机译:喷涂燃烧不稳定;湍流喷涂;LES;

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