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A front tracking method for particle-resolved simulation of evaporation and combustion of a fuel droplet

机译:用于汽化蒸发和燃料燃烧的粒子分辨模拟的前跟踪方法

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A front-tracking method is developed for the particle-resolved simulations of droplet evaporation and combustion in a liquid-gas multiphase system. One field formulation of the governing equations is solved in the whole computational domain by incorporating suitable jump conditions at the interface. Both phases are assumed to be incompressible but the divergence-free velocity condition is modified to account for the phase change at the interface. A temperature gradient based evaporation model is used. An operator-splitting approach is employed to advance temperature and species mass fractions in time. The CHEMKIN package is incorporated into the solver to handle the chemical kinetics. The multiphase flow solver and the evaporation model are first validated using the benchmark problems. The method is then applied to study combustion of a n-heptane droplet using a single-step chemistry model and a reduced chemical kinetics mechanism involving 25-species and 26-reactions. The results are found to be in good agreement with the experimental data and the previous numerical simulations for the time history of the normalized droplet size, the gasification rate, the peak temperature and the ignition delay times. The initial flame diameter and the profile of the flame standoff ratio are also found to be compatible with the results in the literature. The method is finally applied to simulate a burning droplet moving due to gravity at various ambient temperatures and interesting results are observed about the flame blow-off. (C) 2018 Elsevier Ltd. All rights reserved.
机译:开发了前追踪方法,用于液体气体多相体系中的液滴蒸发和燃烧的粒子分辨模拟。通过在界面处结合合适的跳转条件,在整个计算领域中解决了一个现场制定。假设两个阶段是不可压缩的,但是修改了无分离速度条件以考虑界面处的相位变化。使用基于温度梯度的蒸发模型。采用操作员分裂方法及时提高温度和物种质量分数。 Chemkin包装成求解器以处理化学动力学。使用基准问题首先验证多相流动求解器和蒸发模型。然后应用该方法以使用单步化学模型和减少涉及25种和26-反应的化学动力学机制来研究N-庚烷液滴的燃烧。结果,结果与实验数据和前一个数值模拟的归一化液滴尺寸,气化率,峰值温度和点火延迟时间的时间历史吻合良好。还发现初始火焰直径和火焰梯级比率的轮廓与文献中的结果兼容。该方法最终施加以模拟由于在各种环境温度下引起的燃烧液滴移动,并且对火焰吹扫观察到有趣的结果。 (c)2018年elestvier有限公司保留所有权利。

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