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首页> 外文期刊>International Journal of Environmental Science and Technology >NO formation analysis of turbulent non-premixed coaxial methane/air diffusion flame
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NO formation analysis of turbulent non-premixed coaxial methane/air diffusion flame

机译:湍流非预混合同轴甲烷/空气扩散火焰的NO形成分析

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摘要

Natural gas combustion is one of the primary sources of harvesting energy for various processes and has gained a wide attention during the past decade. One of the most recent applications of natural gas combustion can be found in non-premixed combustion of methane in a coflow burner system. One of the main environmental concerns that arises from the natural gas combustion is the formation of NO produced by thermal NO and prompt NO mechanisms. Current paper is devoted on an examination of a 2D numerical simulation of turbulent non-premixed coaxial methane combustion in air enclosed by an axisymmetric cylindrical chamber to study the effects of species concentrations of reactants on NO formation, their individual contributions, and the chamber outlet temperature. A finite-volume staggered grid method is utilized to solve conservation equations of mass, energy, momentum, and species concentrations. In order to handle radiation heat transfer, discrete transfer method is used to solve radiation equation. Utilizing weighted-sum-of-gray-gases model, based on the newly obtained high-temperature molecular spectroscopic data, local variations of species absorption coefficients are taken into account. To calculate NO concentration, a single- or joint-variable probability density function in terms of a normalized temperature, mass fractions of species, or a combination of both is employed. Plus, published relevant experimental data are used to validate temperature and species concentration fields. It is shown that a decrease in N-2 concentration contributes to reducing NO. More importantly for higher O-2 mass fraction, thermal NO formation becomes the dominant mechanism responsible for NO emission.
机译:天然气燃烧是为各种过程收集能量的主要来源之一,并且在过去十年中受到了广泛关注。天然气燃烧的最新应用之一是在同流燃烧器系统中甲烷的非预混合燃烧中发现的。天然气燃烧引起的主要环境问题之一是由热态NO和快速NO机制产生的NO形成。当前的论文致力于对二维非对称同轴甲烷燃烧的二维数值模拟的研究,该二维非对称混合甲烷燃烧是在轴对称圆柱腔室内进行的,以研究反应物的种类浓度对NO形成,其单个贡献和腔室出口温度的影响。 。有限体积交错网格方法用于求解质量,能量,动量和物种浓度的守恒方程。为了处理辐射传热,采用离散传递法求解辐射方程。利用加权的灰色气体总和模型,基于新获得的高温分子光谱数据,考虑了物种吸收系数的局部变化。为了计算NO浓度,采用了归一化温度,物质的质量分数或两者的组合的单变量或联合变量概率密度函数。另外,已发布的相关实验数据用于验证温度和物种浓度场。结果表明,N-2浓度的降低有助于减少NO。更重要的是,对于更高的O-2质量分数,热NO的形成成为负责NO排放的主要机制。

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