Propagation of weakly stretched premixed spherical spray flames in localized homogeneous and heterogeneous reactants

Qiang Li, Huangwei Zhang, C. Shu
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引用次数: 8

Abstract

Propagation of weakly stretched spherical flames in partially pre-vaporized fuel sprays is theoretically investigated in this work. A general theory is developed to describe flame propagation speed, flame temperature, droplet evaporation onset and completion locations. The influences of liquid fuel and gas mixture properties on spherical spray flame propagation are studied. The results indicate that the spray flame propagation speed is enhanced with increased droplet mass loading and/or evaporation heat exchange coefficient (or evaporation rate). Opposite trends are found when the latent heat is high, due to strong evaporation heat absorption. Fuel vapor and temperature gradients are observed in the post-flame evaporation zone of heterogeneous flames. Evaporation completion front location considerably changes with flame radius, but the evaporation onset location varies little relative to the flame front when the flame propagates. For larger droplet loading and smaller evaporation rate, the fuel droplet tends to complete evaporation behind the flame front. Flame bifurcation occurs with high droplet mass loading under large latent heat, leading to multiplicity of flame propagation speed, droplet evaporation onset and completion fronts. The flame enhancement or weakening effects by the fuel droplet sprays are revealed by enhanced or suppressed heat and mass diffusion process in the pre-flame zone. Besides, for heterogeneous flames, heat and mass diffusion in the post-flame zone also exists. The mass diffusion for both homogeneous and heterogeneous flames is enhanced with decreased Lewis number. The magnitude of Markstein length is considerably reduced with increased droplet loading. Moreover, post-flame droplet burning behind heterogeneous flame influences the flame propagation speed and Markstein length when the liquid fuel loading is relatively low.
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弱拉伸预混球形火焰在局部均相和非均相反应物中的传播
本文从理论上研究了弱拉伸球形火焰在部分预汽化燃料喷雾中的传播。建立了描述火焰传播速度、火焰温度、液滴蒸发开始和完成位置的一般理论。研究了液体燃料和气体混合特性对球形喷雾火焰传播的影响。结果表明,随着液滴质量负荷和蒸发换热系数(或蒸发速率)的增加,喷雾火焰的传播速度加快。当潜热高时,由于蒸发吸热强,发现相反的趋势。在非均质火焰的焰后蒸发区观察到燃料蒸气和温度梯度。随着火焰半径的增大,蒸发结束锋位置变化较大,而在火焰传播过程中,蒸发开始锋位置相对于火焰锋位置变化不大。当液滴负荷较大、蒸发速率较小时,燃料液滴倾向于在火焰前缘后完成蒸发。在大潜热条件下,当液滴质量负荷较大时,会发生火焰分岔,导致火焰传播速度、液滴蒸发开始和结束前的多重性。燃料液滴喷射对火焰的增强或减弱作用表现为火焰前区的热扩散和质量扩散过程的增强或抑制。此外,对于非均质火焰,在火焰后区域也存在热扩散和质量扩散。均匀和非均匀火焰的质量扩散都随着刘易斯数的减小而增强。Markstein长度的大小随着液滴载荷的增加而显著减小。当液体燃料负荷较低时,非均质火焰后的焰后液滴燃烧会影响火焰的传播速度和马克斯坦长度。
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