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On the equivalent effect of initial temperature and pressure coupling on the flame speed of methane premixed combustion under dilution

机译:初始温度和压力耦合对稀释下甲烷预混燃烧火焰速度的等效效果

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摘要

This study was conducted with methane as fuel and CO_2 as diluent gas. The equivalent effect of initial temperatures (323-423 K) and pressures (0.1-0.3 MPa) coupling on methane-air premixed combustion flame propagation speed (i.e. increasing or decreasing initial temperature and pressure simultaneously to have same flame propagation speeds when equivalence ratio and fraction of CO_2 are unchanged) was investigated under a series of fractions of CO_2 (0%-16%) and equivalence ratios (0.9, 1.0, and 1.1). Laminar burning velocities of different test conditions with similar flame propagation speeds were investigated and flame instability was also analyzed. The results show that similar flame speeds can be obtained when elevating initial temperature and pressure synchronously under constant equivalence ratio and the fraction of CO_2. Similar flame propagation speeds can lead to close laminar burning velocities and similar flame structures. Flame speed under higher initial temperature and pressure is more sensitive to temperature and pressure, but dilution can suppress this sensitivity. Flame instability is stronger under higher initial temperature and pressure. Hydrodynamic instability dominates and it is mainly influenced by flame thickness. Differences are also shown in pressure and temperature during non-laminar stage. Dilution can enhance the difference in combustion duration.
机译:本研究用甲烷作为燃料和CO_2作为稀释气体进行。初始温度(323-423k)和压力(0.1-0.3MPa)对甲烷 - 空气预混燃烧火焰传播速度(即同时增加或减小初始温度和压力时的压力(0.1-0.3MPa)耦合,当等同比时同时具有相同的火焰传播速度。在CO_2(0%-16%)和等效比(0.9,1.0和1.1)的一系列级分中研究了CO_2的馏分不变)。研究了具有类似火焰传播速度的不同测试条件的层状燃烧速度,并分析了火焰不稳定性。结果表明,当在恒定的等效比和CO_2的分数上同步地升高初始温度和压力时,可以获得相似的火焰速度。类似的火焰传播速度可以导致关闭层流燃烧速度和类似的火焰结构。初始温度和压力下的火焰速度对温度和压力更敏感,但稀释可以抑制这种敏感性。在更高的初始温度和压力下,火焰不稳定性更强。流体动力稳定性主导,主要受火焰厚度的影响。在非层压阶段期间的压力和温度也显示出差异。稀释可以增强燃烧持续时间的差异。

著录项

  • 来源
    《Energy》 |2020年第15期|118269.1-118269.16|共16页
  • 作者单位

    Key Laboratory of Fluid and Power Machinery Ministry of Education Xihua University Chengdu 610039 China;

    Department of Engineering and Design University of Sussex Brighton BN1 9QT United Kingdom;

    Department of Mechanical Engineering National University of Singapore 119260 Singapore;

    Department of Engineering and Design University of Sussex Brighton BN1 9QT United Kingdom;

    Key Laboratory of Fluid and Power Machinery Ministry of Education Xihua University Chengdu 610039 China;

    College of Oujiang Wenzhou University Wenzhou 325035 China;

    Key Laboratory of Fluid and Power Machinery Ministry of Education Xihua University Chengdu 610039 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Methane; Laminar burning velocity; Initial temperature and pressure coupling; Equivalent effect;

    机译:甲烷;层层燃烧速度;初始温度和压力耦合;等效效果;

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