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Investigation of the structural and reactants properties on the thermal characteristics of a premixed porous burner

机译:预混合多孔燃烧器热特性的结构和反应物性能研究

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Porous burners offer attractive features such as competitive combustion efficiency, high power ranges, and lower pollutant emissions. In the present study, the thermal characteristics of a porous burner are numerically investigated for a range of operating conditions and design specifications within a practical range. The premixed flame propagation of a methane/air mixture in a ceramic porous medium is simulated through an unsteady, one-dimensional model. The combustion process is modeled using a suitable single-step chemical kinetics. The reaction location is not predetermined, thus the flame is allowed to float within the solid matrix or to run off from either side of the porous medium. The numerical results indicate that flame stability and thermal characteristics of the burner are strongly dependent on the inlet mixture specifications and the solid matrix structural properties. For a fixed value of the inlet firing rate, the combustion products temperature will increase by an increase in the inlet gas temperature, an increase in the matrix porosity, or by a decrease of the matrix pore density. Among the geometrical properties, the burner length has virtually no effect on the burner performance. An increase in the solid matrix porosity or burner firing rate will increase the efficiency of the preheating zone, while increasing the inlet gas temperature or matrix pore density will cause a reduction in this efficiency. Simulation results also suggest that in order to prevent flame blow-out or flash-back, critical values of the burner settings and design parameters must be avoided.
机译:多孔燃烧器具有吸引人的功能,例如具有竞争力的燃烧效率,高功率范围和较低的污染物排放。在本研究中,对多孔燃烧器的热特性进行了数值研究,以求在一定范围内的工作条件和设计规格之内。通过不稳定的一维模型模拟了甲烷/空气混合物在陶瓷多孔介质中的预混火焰传播。使用合适的单步化学动力学对燃烧过程进行建模。反应位置不是预先确定的,因此使火焰漂浮在固体基质中或从多孔介质的任一侧逸出。数值结果表明,燃烧器的火焰稳定性和热特性在很大程度上取决于入口混合物的规格和固体基质的结构特性。对于入口燃烧速率的固定值,燃烧产物温度将通过入口气体温度的升高,基质孔隙率的升高或基质孔密度的降低而升高。在几何特性中,燃烧器长度实际上对燃烧器性能没有影响。固体基质孔隙率或燃烧器燃烧速率的增加将增加预热区的效率,而进口气体温度或基质孔密度的增加将导致该效率的降低。仿真结果还表明,为了防止火焰吹出或回火,必须避免燃烧器设置和设计参数的临界值。

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