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Investigation of heat transfer characteristics of hydrogen combustion process in cylindrical combustors from microscale to mesoscale

机译:微尺寸圆柱形燃烧器氢气燃烧过程传热特性研究

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In the field of micro and mesoscale combustion, the feature of flame-wall thermal coupling is of great significance because of its small scale nature. Thus, this work provides a comprehensive heat transfer analysis in cylindrical combustors from the perspective of numerical simulation. The combustor has a fixed length-to-diameter aspect ratio of 10, and the channel diameter is scaling up from 1 mm to 11 mm to explore the influence of chamber dimension on heat transfer and flame structure. The distribution of convective and radiative heat flux on inner surface, contribution of thermal radiation are given. Moreover, the role of radiation in flame structure is analyzed, and the convective and radiative heat losses are quantitatively analyzed. We find that radiative heat flux is smaller compared to convective heat flux, and the proportion of radiative heat flux becomes larger with an increasing diameter. Thermal radiation does not change the flame structure when the diameter is less than 3 mm. When the diameter is greater than 5 mm, thermal radiation changes the location of flame front. The heat loss becomes larger at a smaller diameter, and heat loss ratio can reach approximately 73.6% in the combustor with diameter of 1 mm. (c) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在微型和介质燃烧领域中,火焰壁热耦合的特征是由于其小规模性质的重要性。因此,从数值模拟的角度来看,该工作在圆柱形燃烧器中提供了综合传热分析。燃烧器具有10的固定长度直径纵横比,通道直径从1mm​​到11mm缩放,以探讨腔室尺寸对传热和火焰结构的影响。给出了内表面上的对流和辐射热通量的分布,给出了热辐射的贡献。此外,分析了辐射在火焰结构中的作用,并且定量分析了对流和辐射热损失。与对流热通量相比,我们发现辐射热通量更小,并且辐射热通量的比例随着直径的增加而变大。当直径小于3mm时,热辐射不会改变火焰结构。当直径大于5mm时,热辐射会改变火焰前面的位置。热损失在较小的直径下变大,并且热损失比率在燃烧器中达到大约73.6%,直径为1mm。 (c)2021氢能出版物LLC。 elsevier有限公司出版。保留所有权利。

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