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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Effect of CO_2 Dilution on the Laminar Burning Velocities of Premixed Methane/Air Flames at Elevated Temperature
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Effect of CO_2 Dilution on the Laminar Burning Velocities of Premixed Methane/Air Flames at Elevated Temperature

机译:高温下CO_2稀释对甲烷/空气预混合层流燃烧速度的影响

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摘要

With increased interest in reducing emissions, the staged combustion concept for gas turbine combustors is gaining in popularity. For this work, the effect of CO_2 dilution on laminar burning velocities of premixed methane/air flames was investigated at elevated temperature through both experiments and numerical simulations. Validation of the experimental setup and methodology was completed through experimental testing of methane/air mixtures at 1 bar and 298 K. Following validation, high temperature experiments were conducted in an optically accessible constant volume combustion chamber at 1 bar and 473 K. Laminar burning velocities of premixed methane/air flames with 0%, 5%, 10%, and 15% CO_2 dilution were determined using the constant pressure method enabled via schlieren visualization of the spherically propagating flame front. Results show that laminar burning velocities of methane/air mixtures at 1 bar increase by 106-145% with initial temperature increases from 298 K to 473 K. Additions of 5%, 10%, and 15% CO_2 dilution at 1 bar and 473 K cause a 30-35%, 51-54%, and 66-68% decrease in the laminar burning velocity, respectively. Numerical results were obtained with CHEMKIN (Kee et ah, 1985, "PREMIX: A Fortran Program for Modeling Steady Laminar One-Dimensional Premixed Flames,") using the GRI-Mech 3.0 (Smith et al., 2019) and the San Diego ("Chemical-Kinetic Mechanisms for Combustion Applications," San Diego Mechanism Web Page, Mechanical and Aerospace Engineering (Combustion Research), University of California at San Diego, San Diego, CA) mechanisms. It is concluded that the GRI-Mech 3.0 (Smith et al.., 2019) better captures the general overall trend of the experimental laminar flame speeds of methane/air/CO_2 mixtures at 1 bar and 473 K. Additionally, the dilution, thermal-diffusion, and chemical effects of CO_2 on the laminar burning velocities of methane/air mixtures were investigated numerically by diluting the mixtures with both chemically active and inactive CO_2 following the determination of the most important elementary reactions on the burning rate through sensitivity analysis. Finally, it was shown that CO_2 dilution suppresses the flame instabilities during combustion, which is attributable to the increase in the burned gas Markstein length (L_b) with the addition of diluent.
机译:随着人们对减少排放的兴趣日益浓厚,燃气轮机燃烧器的分级燃烧概念正逐渐普及。对于这项工作,通过实验和数值模拟,研究了在高温下,CO_2稀释对甲烷/空气预混火焰层流燃烧速度的影响。通过在1 bar和298 K下对甲烷/空气混合物进行实验测试来完成对实验装置和方法的验证。验证之后,在光学可访问的恒定体积燃烧室中在1 bar和473 K下进行高温实验。层流燃烧速度使用恒压法通过球形传播的火焰锋面的谢利伦可视化方法确定了稀释度为0%,5%,10%和15%CO_2的甲烷/空气预混合火焰的浓度。结果表明,随着初始温度从298 K升高到473 K,甲烷/空气混合物在1 bar的层流燃烧速度增加了106-145%。在1 bar和473 K的条件下,分别稀释了5%,10%和15%的CO_2分别导致层流燃烧速度降低30-35%,51-54%和66-68%。使用GRI-Mech 3.0(Smith et al。,2019)和San Diego(KEEKIN(Kee et al。,1985,“ PREMIX:Fortran Programme for Steady Laminar一维预混火焰)程序”获得数值结果。 “用于燃烧应用的化学动力学机制”,圣地亚哥机制网页,机械和航空航天工程(燃烧研究),加利福尼亚大学圣地亚哥分校,加利福尼亚圣地亚哥)机制。结论是GRI-Mech 3.0(Smith等人,2019)更好地捕捉了在1 bar和473 K下甲烷/空气/ CO_2混合物的实验层流火焰速度的总体总体趋势。通过敏感性分析确定了最重要的基本反应速率后,用化学活性和非活性CO_2稀释混合物,对甲烷/空气混合物的层间燃烧速度进行了扩散-扩散和化学效应的研究。最后,结果表明,CO_2稀释可抑制燃烧过程中的火焰不稳定性,这归因于添加稀释剂后燃烧气体马克斯坦长度(L_b)的增加。

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