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Numerical characterization of a premixed flame based annular microcombustor

机译:基于预混合火焰的环形微燃烧器的数值表征

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Thermal inertia of the surrounding hardware or elaborate flow arrangement is used for external recirculation of heat in many microcombustors, increasing the weight and pressure losses. Recent research promotes hydrogen as a promising fuel for microcombustion due to its high heat of combustion. On this background, a hydrogen-fuelled microcombustor of simple construction was designed, which utilized the external thermal recirculation by a hollow nitrogen-filled tube inserted in the flame. The present paper reports stabilization and structure of a well stabilized stoichiometric H_2-air flame established in this microcombustor with the help of a detailed computational fluid dynamics model. Self-sustaining combustion could be achieved without any need for catalytic action. An asymmetric flame composed of two branches was stabilized on the walls at a location where the wall heat losses were balanced by the wall heat conduction. The flame thickness exceeded its characteristic one-dimensional value and flame zone broadened from the base to the tip due to heat losses and differential diffusion of hydrogen. Finally, the performance data for different inlet mass flow rates and wall thermal conductivities revealed useful operating points of the microcombustor for applications including micro-propulsion, heating and portable electric power generation.
机译:周围硬件的热惯性或精心设计的流量布置用于许多微型燃烧器中热量的外部再循环,从而增加了重量和压力损失。由于氢的高燃烧热,最近的研究提倡氢作为有希望的微燃烧燃料。在这种背景下,设计了一种结构简单的氢燃料微型燃烧器,该燃烧器利用插入火焰中的中空充氮管利用外部热循环。本文通过详细的计算流体动力学模型,报告了在该微型燃烧器中建立的化学计量良好的H_2-空气火焰的稳定性和结构。无需任何催化作用即可实现自持燃烧。由两个分支组成的不对称火焰稳定在壁上,在该位置壁热损失通过壁热传导得到平衡。火焰厚度超过其特征性的一维值,并且由于热量的损失和氢的差异扩散,火焰的区域从底部扩展到尖端。最后,不同进气质量流量和壁热导率的性能数据揭示了微型燃烧器在包括微推进,加热和便携式发电在内的应用中有用的工作点。

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