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Investigations on performance and emission characteristics of an industrial low swirl burner while burning natural gas, methane, hydrogen-enriched natural gas and hydrogen as fuels

机译:工业低涡流燃烧器燃烧天然气,甲烷,富氢天然气和氢气作为燃料时的性能和排放特性的研究

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Although many detailed chemical reaction mechanisms, skeletal mechanisms and reduced mechanisms are available in the literature to modeling the natural gas, they are computational expensive, required high power computing especially for three dimensional complex geometries with intense meshes. For example, though the DRM19 reduced mechanism does not include NO and NO2 species, it includes 19 species and 84 reactions. On the other hand, Eddy Dissipation combustion model in which the overall rate of reaction is mainly controlled by turbulent mixing can be utilized as a practical approach for fast burning and fast reaction fuels such as natural gas. Unlike fossil fuels, hydrogen is a renewable energy and quite clean in terms of carbon monoxide and carbon dioxide emissions. However, numerical and experimental studies on hydrogen combustion in burners are very restricted. In this study, the combustion of natural gas in an industrial low swirl burner boiler system has been experimentally investigated. The results obtained from the experimental setup have been utilized as boundary conditions for CFD simulations. With the use of Eddy Dissipation method, methane-air-2-step reaction mechanism is used for modeling of natural gas as methane gas and the reaction mechanism has been modified for natural gas considering the natural gas properties to reveal the similarities and differences of both fuels in modeling. In addition, the combustion performances of natural gas with the use of full and periodic models, which are geometric models of the burner boiler pair, are compared. Moreover, in order to reveal the effect of the hydrogen enriched natural gas and pure hydrogen on the performance of low swirl burner boiler considering the combustion emissions, four various gas contents (thermal load ratio: 75% NG + 25%H-2, 50%NG + 50%H-2, 25%NG + 75%H-2, 100%H-2) at the same thermal load have been investigated. The turbulent flames of the industrial low swirl burner have been studied numerically using ANSYS Fluent 16.0 for the solution of governing equations. The results obtained in this study show that with the utilizing Eddy Dissipation method, natural gas can be modeled as methane gas with well-known methane-air-2step reaction mechanism or as natural gas with modified methane-air-2step reaction mechanism with approximate results. Additionally, the use of periodic boundary condition, which enables studying with 1/4 of geometric model, gives satisfactory results with less number of meshes when compared to the full model. Furthermore, in the case of using hydrogen enriched natural gas or pure hydrogen instead of natural gas as the fuel, the combustion emissions of the burner boiler such as CO and CO2 are remarkably decreasing compared to the natural gas. However, the NOx emissions are significantly increasing especially due to thermal NO. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:尽管文献中有许多详细的化学反应机理,骨架机理和还原机理可用于对天然气建模,但它们计算量大,需要大功率计算,尤其是对于具有密集网格的三维复杂几何体。例如,尽管DRM19还原机理不包括NO和NO2,但它包括19种和84个反应。另一方面,其中总反应速率主要由湍流混合控制的涡流燃烧模型可以用作快速燃烧和快速反应燃料(例如天然气)的实用方法。与化石燃料不同,氢是一种可再生能源,在一氧化碳和二氧化碳排放方面非常清洁。但是,关于燃烧器中氢燃烧的数值和实验研究非常有限。在这项研究中,对工业低涡流燃烧器锅炉系统中的天然气燃烧进行了实验研究。从实验设置获得的结果已用作CFD模拟的边界条件。利用涡流消散法,采用甲烷-空气两步反应机理对天然气进行甲烷建模,并考虑到天然气的性质对天然气的反应机理进行了修改,以揭示两者的异同。建模中的燃料。另外,比较了使用完整和周期性模型(即燃烧器锅炉对的几何模型)的天然气的燃烧性能。此外,为了揭示考虑燃烧排放的富氢天然气和纯氢对低旋流燃烧器锅炉性能的影响,四种不同的气体含量(热负荷比:75%NG + 25%H-2,50研究了在相同热负荷下的%NG + 50%H-2、25%NG + 75%H-2、100%H-2)。使用ANSYS Fluent 16.0对控制方程的求解进行了数值研究,以研究工业低涡旋燃烧器的湍流火焰。这项研究获得的结果表明,利用涡流消散方法,可以将天然气建模为具有众所周知的甲烷-空气-2步反应机理的甲烷气,或建模为具有改进的甲烷-空气-2步反应机理的天然气,其结果近似。此外,与整个模型相比,使用周期性边界条件可以进行1/4几何模型的研究,从而以较少的网格数提供令人满意的结果。此外,在使用富含氢的天然气或纯氢代替天然气作为燃料的情况下,与天然气相比,燃烧器锅炉的燃烧排放物例如CO和CO 2显着减少。但是,NOx排放显着增加,尤其是由于热NO的影响。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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