论文标题
建模由部分蒸发的N-甲烷喷雾剂燃烧的旋转爆炸燃烧
Modelling Rotating Detonative Combustion Fueled by Partially Pre-vaporized n-Heptane Sprays
论文作者
论文摘要
进行了欧拉 - 拉格朗日模拟,以通过部分前置的N-甲烷喷雾剂燃料进行二维旋转爆炸燃烧(RDC)。研究了液滴直径和总等效比对爆炸燃烧和液滴动力学的影响。发现在爆炸波周围完全蒸发了小的N-甲基液滴(例如5 um),而中间的N-甲基液滴(例如20 um)在爆炸波中或后面消耗,并在爆炸波后面消耗,并连续蒸发并进行逃脱。 RDE燃烧器中的液滴分布受到液滴蒸发行为的显着影响。在两相RDC中可以看到混合的预混合和非固定燃烧模式。当液滴直径大小时,引爆的燃料分数很高,达到其最小值,直径为20 um。爆炸的传播速度随液滴直径增加而降低,当直径较大(> 30 UM)时,几乎是恒定的。与各自的气态病例相比,速度缺陷为2-18%。此外,随着同一液滴直径的总当量比增加,传播速度会增加。还发现,爆炸的繁殖速度和爆炸燃料分数受到预先蒸发的气体当量比率的影响很大。对于初始直径小于5μm的病例,特异性脉冲首先会减小,然后随着液滴直径在5μm至20μm之间的增加而增加,最终随液滴直径大于20μm而降低。
Eulerian-Lagrangian simulations are conducted for two-dimensional Rotating Detonative Combustion (RDC) fueled by partially prevaporized n-heptane sprays. The influences of droplet diameter and total equivalence ratio on detonation combustion and droplet dynamics are studied. It is found that small n-heptane droplets (e.g. 5 um) are completely vaporized around the detonation wave, while intermediate n-heptane droplets (e.g. 20 um) are consumed in or behind the detonation wave, with the escaped ones be continuously evaporated and deflagrated. The droplet distributions in the RDE combustor are significantly affected by the droplet evaporation behaviors. Mixed premixed and non-premixed combustion modes are seen in two-phase RDC. The detonated fuel fraction is high when the droplet diameters are small or large, reaching its minimal value with diameter being 20 um. The detonation propagation speed decreases with increased droplet diameter and is almost constant when the diameter is larger (> 30 um). The velocity deficits are 2-18% compared to the respective gaseous cases. Moreover, the propagation speed increases as the total equivalence ratio increases for the same droplet diameter. It is also found that the detonation propagation speed and detonated fuel fraction are considerably affected by the pre-vaporized gas equivalence ratio. The specific impulse first decreases for cases with initial diameter less than 5 μm, then increases with droplet diameter between 5 μm and 20 μm, and finally decreases with droplet diameter larger than 20 μm.