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Numerical investigation of the flame stabilization in a divergent porous media burner

机译:多孔介质燃烧器火焰稳定性的数值研究

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In the present work, a numerical study on the flame stabilization in a divergent porous media burner was carried out. The purpose of this study was to peruse the influence of different conditions on the flame status in a porous medium. Two-dimensional axisymmetric model was used to simulate the process of premixed methane-air combustion. Nonequilibrium condition between the solid and gas temperature was considered and heat recirculation in the porous medium was quantified. The present numerical method was validated by comparison of solid and gas temperature profiles against the experimental data. The results showed that the stable flame within the porous medium can be controlled by velocity and equivalence ratio of the incoming mixture. Also, it was proved that the alteration of divergence angle can change the flame stability limit so that the optimum divergence angle that results in the highest limit of flame stability range was 60 degrees. The heat transfer analysis indicated that the heat recirculation efficiency decreases with increase in the equivalence ratio and inlet velocity.
机译:在目前的工作中,对发散的多孔介质燃烧器中的火焰稳定性进行了数值研究。这项研究的目的是仔细研究不同条件对多孔介质中火焰状态的影响。二维轴对称模型用于模拟甲烷-空气预混合燃烧过程。考虑了固体和气体温度之间的非平衡条件,并对多孔介质中的热循环进行了定量。通过将固体和气体温度曲线与实验数据进行比较,验证了本数值方法的有效性。结果表明,多孔介质中稳定的火焰可以通过进入混合物的速度和当量比来控制。另外,证明了发散角的改变可以改变火焰稳定性极限,使得导致火焰稳定范围的最高极限的最佳发散角为60度。传热分析表明,当量比和进口速度增加时,热循环效率降低。

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