首页> 外文会议>International Symposium on Combustion; 20060805-11; University of Heidelberg(DE) >Analysis of the asymptotic structure of stoichiometric premixed CH_4-H_2-air flames
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Analysis of the asymptotic structure of stoichiometric premixed CH_4-H_2-air flames

机译:化学计量的CH_4-H_2-空气预混火焰的渐近结构分析

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The classical asymptotic theory describing the structure of stoichiometric methane-air flames, introduced by Peters and Williams, has been extended to describe the structure of stoichiometric methane-hydrogen-air flames. The theory predicts a decreasing inner-layer temperature, while the adiabatic flame temperature increases slightly with increasing amount of hydrogen in the fuel. These changes together lead to an increasing burning velocity as a function of the amount of hydrogen in the fuel mixture. The predicted variations are compared with numerical results; the burning velocity is also compared with experiments and the agreement is reasonable. To demonstrate in an independent way that the decrease in the inner-layer temperature dominates the change in flame structure and burning velocity, additional measurements of the influence of heat loss on the burning velocity of methane-hydrogen-air flames are carried out. The effective activation energy governing this behavior shows a decrease as a function of the amount of hydrogen, confirming the prediction of the theory that the inner-layer temperature decreases with increasing amount of hydrogen. The derived analytical expressions can be used to guide the adaption of combustion systems running on natural gas when hydrogen is added to the fuel.
机译:由Peters和Williams引入的描述化学计量甲烷-空气火焰结构的经典渐近理论已被扩展到描述化学计量甲烷-氢-空气火焰的结构。该理论预测内层温度会降低,而绝热火焰温度会随着燃料中氢的增加而略有增加。这些变化共同导致燃烧速度的增加,该燃烧速度是燃料混合物中氢含量的函数。将预测的变化与数值结果进行比较;燃烧速度也与实验进行了比较,吻合是合理的。为了以独立的方式证明内层温度的下降主导了火焰结构和燃烧速度的变化,对热量损失对甲烷-氢-空气火焰燃烧速度的影响进行了额外的测量。控制该行为的有效活化能显示出作为氢量的函数的降低,这证实了理论的预测,即内层温度随氢量的增加而降低。当将氢添加到燃料中时,导出的分析表达式可用于指导在天然气上运行的燃烧系统的适应性。

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