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Interface-resolved simulation of the evaporation and combustion of a fuel droplet suspended in normal gravity

机译:诸如垂直重力悬浮的燃料液滴的蒸发和燃烧的接口分辨仿真

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摘要

An interface-resolved simulation of the combustion of a fuel droplet suspended in normal gravity is presented in this work, followed by an extensive analysis on the physical aspects involved. The modeling is based on DropletSMOKE++, a multiphase solver developed for the modeling of droplet vaporization and combustion in convective conditions. A wide range of phenomena can be described by the model, including the interface advection, the phase-change, the combustion chemistry, non-ideal thermodynamics and multicomponent mixtures. To our knowledge, this is the most detailed simulation performed on this configuration, providing a useful theoretical and numerical support for the experimental activity on this field. A recent experimental work is used as a reference, in which a methanol droplet is suspended on a quartz fiber and ignited at different oxygen concentrations. The numerical analysis offers a detailed insight into the physics of the problem and a satisfactory agreement with the experiments in terms of diameter decay, radial temperature profiles and sensitivity to the oxygen concentration. The vaporization rate is affected by the thermal conduction from the fiber, due to the high temperatures involved. Moreover, the fiber perturbs the flame itself, providing quenching at its surface. The combustion physics is compared to the one predicted at zero-gravity, evidencing a lower standoff-ratio, a higher flame temperature and an intense internal circulation. The distribution of the species around the droplet shows (i) a local accumulation of intermediate oxidation products at the fiber surface and (ii) water absorption in the liquid phase, affecting the vaporization rate.
机译:在这项工作中介绍了悬浮在正常重力中的燃料液滴燃烧的接口分辨模拟,然后对所涉及的物理方面进行了广泛的分析。该建模基于DropletSmoke ++,对于对流条件中的液滴蒸发和燃烧建模开发的多相求解器。该模型可以描述各种现象,包括界面平流,相变,燃烧化学,非理想的热力学和多组分混合物。据我们所知,这是对这种配置执行的最详细的模拟,为该领域的实验活动提供了有用的理论和数值支持。最近的实验工作用作参考,其中甲醇液滴悬浮在石英纤维上并以不同的氧浓度点燃。数值分析提供了对问题的物理学的详细洞察,以及在直径衰减,径向温度谱和对氧浓度的敏感性方面的实验令人满意的协议。由于所涉及的高温,蒸发速率受到纤维的热传导的影响。此外,纤维渗透着火焰本身,在其表面处提供猝灭。将燃烧物理学与零重力预测的燃烧物理学进行比较,证明较低的支座比,较高的火焰温度和强烈的内循环。液滴周围的物种的分布显示(i)纤维表面的中间氧化产物的局部积累和(ii)液相吸水,影响蒸发速率。

著录项

  • 来源
    《Fuel》 |2021年第1期|119413.1-119413.15|共15页
  • 作者单位

    Dept Chem Mat & Chem Engn G Natta Piazza Leonardo da Vinci 32 I-20133 Milan Italy;

    Dept Chem Mat & Chem Engn G Natta Piazza Leonardo da Vinci 32 I-20133 Milan Italy;

    Dept Chem Mat & Chem Engn G Natta Piazza Leonardo da Vinci 32 I-20133 Milan Italy;

    Dept Chem Mat & Chem Engn G Natta Piazza Leonardo da Vinci 32 I-20133 Milan Italy;

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

    Droplet combustion; Evaporation; Flame; VOF; Support fiber; Methanol;

    机译:液滴燃烧;蒸发;火焰;vof;支持纤维;甲醇;
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