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Laminar Flame Speed Measurements of Kerosene-Based Fuels Accounting for Uncertainties in Mixture Average Molecular Weight

机译:基于煤油的燃料的层状火焰速度测量算用于混合平均分子量的不确定性

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摘要

New laminar flame speed experiments have been collected for some kerosene-based liquid fuels: Jet-A, RP-1, and diesel fuel #2. Accurately understanding the combustion characteristics of these, and all kerosene-based fuels in general, is an important step in developing new chemical kinetics mechanisms that can be applied to these fuels. It is well known that the precise composition of these fuels changes from one production batch to the next, leading to significant uncertainty in the mixture average properties. For example, uncertainty in a fuel blend's molecular weight can have a noticeable effect on defining an equivalence ratio for a typical fuel-air mixture, of the order of 15%. Because of these uncertainties, fuel mole fraction, X_(FUEL), is shown to be a more appropriate parameter for comparison between different batches of fuel. Additionally, a strong linear correlation was detected between the burned-gas Markstein length and the equivalence ratio. This correlation is shown to be useful in determining the acceptability and accuracy of individual data points. Spherically expanding flames were measured over a range of fuel mole fractions corresponding to equivalence ratios of Φ= 0.7 to Φ = 1.5, at initial conditions of 1 atm and 403 K in the high-temperature, high-pressure (HTHP) constant volume vessel at Texas A&M University. These new results are compared with the limited set of laminar flame speed data currently available in the literature for this fuel.
机译:已经收集了一些基于煤油的液体燃料的新型层状火焰速度实验​​:Jet-A,RP-1和柴油燃料#2。准确地理解这些的燃烧特性和所有基于煤油的燃料一般,是开发可以应用于这些燃料的新化学动力学机制的重要一步。众所周知,这些燃料的精确组成从一个生产批次变化到下一个生产批次,导致混合物平均性质的显着不确定性。例如,燃料混合物的分子量的不确定性可以具有明显的效果,对典型的燃料空气混合物的等效比为15%。由于这些不确定性,燃料摩尔馏分X_(燃料)被示出为更合适的参数,以便在不同批次的燃料之间进行比较。另外,在燃烧气体Markstein长度和等效比之间检测到强烈的线性相关性。该相关性被认为是在确定各个数据点的可接受性和准确性方面是有用的。在高温,高压(HTHP)恒定容器中的1atm和403k的初始条件下,在对应于φ= 0.7至φ= 1.5的等当量比对应的燃料摩尔分数范围内测量球形膨胀的火焰。德克萨斯州A&M大学。将这些新结果与该燃料中文文献中当前可用的有限的层状火焰速度数据进行比较。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2021年第4期|041018.1-041018.10|共10页
  • 作者单位

    J. Mike Walker '66 Department of Mechanical Engineering Texas A&M University College Station TX 77843;

    Texas A&M University at Qatar Doha Qatar;

    J. Mike Walker '66 Department of Mechanical Engineering Texas A&M University College Station TX 77843;

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