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Soot evolution in turbulent nonpremixed ethylene/hydrogen bluff body flames

机译:湍流非增剂乙烯/氢气Bluff体火焰中的烟灰进化

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The evolution of soot in a turbulent nonpremixed bluff body ethylene/hydrogen (2:1 by volume) flame was investigated using a combination of experiments and Large Eddy Simulation and compared with a neat ethylene counterpart [Mueller et al., Combust. Flame, 160, 2013]. The maximum soot volume fractions in the recirculation zone and jet-like region of the ethylene/hydrogen case are significantly lower than that of the ethylene case. Flamelet calculations demonstrated that hydrogen addition suppressed soot formation due to the reduction of the C/H ratio, resulting in an estimated fourfold reduction in soot volume fraction due to chemical effects. Soot reduction in the downstream jet-like region of the flame is quantitatively consistent with this chemical effect. However, soot reduction in the recirculation zone is substantially larger than this analysis suggests, indicating an additional hydrodynamic effect. Large Eddy Simulation was used to further investigate soot evolution in the recirculation zone and to elucidate the role of hydrogen addition. For the same jet Reynolds number as the neat ethylene case (~ 30,900), the addition of hydrogen requires a higher jet velocity, and this leads to a leaner recirculation zone that inhibits soot formation and promotes soot oxidation.
机译:使用实验和大涡模拟的组合和大乙烯对应物进行研究,研究了烟气中烟雾中烟灰中的烟灰中乙烯/氢气(2:1乘体积体积)火焰[Mueller等。,燃烧。火焰,160,2013]。乙烯/氢壳的再循环区和喷射区域中的最大烟灰体积分数显着低于乙烯壳的射流。挥动率计算证明,由于C / H比的降低,氢添加抑制烟灰形成,导致由于化学效应导致烟灰体积馏分估计的四倍降低。在火焰的下游喷射区域中的烟灰降低与这种化学效果定量一致。然而,再循环区的烟灰降低基本上大于该分析表明,表明额外的流体动力学效果。大型涡流模拟用于进一步调查再循环区中的烟灰进化并阐明氢添加的作用。对于与整齐的乙烯外壳(〜30,900)相同的射流雷诺数,加入氢气需要较高的射流速度,并且这导致抑制烟灰形成并促进烟灰氧化的稀释再循环区。

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