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A theoretical and experimental study of preferential-diffusion/stretch interactions of laminar premixed flames.

机译:层状预混火焰优先扩散/拉伸相互作用的理论和实验研究。

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Recent work shows that preferential-diffusion/stretch interactions of laminar premixed flames are sufficiently robust to affect the stability of practical strongly-turbulent flames. In addition, past measurements of laminar burning velocities should be re-assessed because there generally was no attempt to control flame stretch. Finally, the sensitivity of laminar premixed flames to stretch (represented by the Markstein number) should be studied to better understand and model the properties of laminar premixed flames. Motivated by these considerations, an experimental and computational study of preferential-diffusion/stretch interactions for laminar premixed flames, for both alkane/alcohol-fuel-vapor-fueled flames (as practical fuels) and hydrogen-fueled flames (considering diluent-variation effects) was carried out during the present investigation.; Considering outwardly-propagating spherical laminar premixed flames, laminar burning velocities of fuel-vapor/oxygen/nitrogen flames and hydrogen/oxygen/diluent (nitrogen, argon or helium) flames were measured for various values of stretch, fuel-equivalence ratios (0.6–4.5) and pressures (0.3–3 atm). The measurements were reduced to find fundamental unstretched laminar burning velocities and Markstein numbers. The measurements were also used to evaluate corresponding numerical simulations of the experimentally-observed flames, based on contemporary detailed H2/O2 reaction mechanisms.; Both measured and predicted ratios of unstretched to stretched laminar burning velocities varied linearly with flame stretch (represented by the Karlovitz number), yielding a constant Markstein number for a particular reactant mixture. The present flames were very sensitive to flame stretch (i.e., they had large Markstein numbers with significant ratios of unstretched to stretched laminar burning velocities) for levels of flame stretch well below quenching conditions. Increasing flame temperatures tended to reduce flame sensitivity to stretch while increasing pressures tended to increase tendencies toward preferential-diffusion instability behavior. At low pressure conditions, nitrogen-/argon-diluted hydrogen flames exhibited negative Markstein numbers at fuel-lean conditions, which is consistent with classical preferential-diffusion ideas, whereas helium-diluted hydrogen flames exhibited only positive Markstein numbers over the whole measured fuel-equivalence ratio range due to stabilization of flame properties by strong thermal diffusion effects. Predicted and measured flame properties exhibited encouraging agreement using contemporary reaction mechanisms. Finally, flame structure predictions suggest that H/OH radical production and transport is an important aspect of preferential-diffusion/stretch interactions, reflecting the strong correlation between laminar burning velocities and H+OH radical concentrations for present test conditions.
机译:最近的工作表明,层流预混火焰的优先扩散/拉伸相互作用足够牢固,足以影响实际强湍流火焰的稳定性。另外,应该重新评估过去对层流燃烧速度的测量,因为通常没有尝试控制火焰的伸展。最后,应研究层流预混火焰的拉伸敏感性(由马克斯坦数表示),以更好地理解和建模层流预混火焰的特性。基于这些考虑,对层流预混火焰,烷烃/酒精-燃料-蒸气-燃料火焰(作为实用燃料)和氢燃料-火焰(考虑稀释剂变化效应)的优先扩散/拉伸相互作用进行了实验和计算研究)是在本次调查期间进行的。考虑到向外传播的球状层流预混火焰,针对各种拉伸,燃料当量比值(0.6-0.6)测量了燃料-蒸气/氧气/氮气火焰和氢气/氧气/稀释剂(氮气,氩气或氦气)的层流燃烧速度。 4.5)和压力(0.3-3 atm)。减少测量以找到基本的未拉伸层流燃烧速度和马克斯坦数。根据当代详细的H 2 / O 2 反应机理,这些测量结果还用于评估实验观察到的火焰的相应数值模拟。未拉伸与拉伸层流燃烧速度的测量比率和预测比率均随火焰拉伸线性变化(用卡洛维兹数表示),对于特定的反应混合物产生恒定的马克斯坦数。对于在远低于淬火条件下的火焰拉伸水平,本发明的火焰对火焰拉伸非常敏感(即,它们具有大的马克斯坦数,未拉伸与拉伸的层状燃烧速度之比很大)。火焰温度升高趋于降低火焰拉伸敏感性,而压力升高趋于优先扩散不稳定行为。在低压条件下,稀燃条件下用氮气/氩气稀释的氢火焰显示出负的马克斯坦数,这与经典的优先扩散思想相符,而氦稀释的氢气火焰在整个测量的燃料中仅显示正的马克斯坦数。当量比范围由于归因于强烈的热扩散效应而使火焰性能稳定。使用现代反应机制,预测和测量的火焰特性表现出令人鼓舞的一致性。最后,火焰结构预测表明,H / OH自由基的产生和运输是优先扩散/拉伸相互作用的重要方面,反映了当前测试条件下层流燃烧速度与H + OH自由基浓度之间的强相关性。

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