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Structural differences of ethanol and DME jet flames in a hot diluted coflow

机译:热稀释同流中乙醇和DME喷射火焰的结构差异

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This study compares the flame structure of ethanol and dimethyl ether (DME) in a hot and diluted oxidiser experimentally and computationally. Experiments were conducted on a Jet in Hot Coflow (JHC) burner, with the fuel jet issuing into a 1250-K coflow at three oxygen levels. Planar measurements using OH-LIF, CH2O-LIF, and Rayleigh scattering images reveal that the overall spatial distribution and evolution of OH, CH2O, and temperature were quite similar for the two fuels. For both the ethanol and the DME flames, a transitional flame structure occurred as the coflow oxygen level increased from 3% to 9%. This indicates that the flames shift away from the MILD combustion regime. Reaction flux analyses of ethanol and DME were performed with the OPPDIF code, and ethane (C2H6) was also included in the analyses for comparison. These analyses reveal that the H-2/O-2 pathways are very important for both ethanol and DME in the 3% O-2 cases. In contrast, the importance of fuel-specific reactions overtakes that of H-2/O-2 reactions when fuels are burnt in the cold air or in the vitiated oxidant stream with 9% 02. Unsteady laminar flamelet analyses were also performed to investigate the ignition processes and help interpret experimental results. Flamelet equations were solved in time and mixture fraction field, which was provided by non-reactive Large-Eddy Simulation (LES). (C) 2018 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:这项研究通过实验和计算比较了在热和稀释的氧化剂中乙醇和二甲醚(DME)的火焰结构。实验是在热同流喷射(JHC)燃烧器上进行的,燃料喷射流在三个氧气水平下均射入1250-K同流。使用OH-LIF,CH2O-LIF和瑞利散射图像进行的平面测量显示,两种燃料的OH,CH2O和温度的总体空间分布和演变非常相似。对于乙醇火焰和DME火焰,当顺流氧气含量从3%增加到9%时,发生了过渡火焰结构。这表明火焰偏离了MILD燃烧方案。乙醇和DME的反应通量分析使用OPPDIF代码进行,分析中还包括乙烷(C2H6)进行比较。这些分析表明,在3%的O-2病例中,H-2 / O-2途径对于乙醇和DME都非常重要。相反,当燃料在冷空气或含9%02的氧化氧化剂流中燃烧时,燃料特异性反应的重要性超过H-2 / O-2反应。还进行了非恒定层流火焰分析,以研究点火过程并帮助解释实验结果。通过非反应性大涡模拟(LES)提供的时间和混合分数场求解小火焰方程。 (C)2018年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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