电场辅助减少氮氧化物排放的数值研究

Sheikh F. Ahmed, A. C. Aghdam, Jackson Pleis, R. Geiger, T. Farouk
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摘要

本文报道了直流驱动径向电场对发射特性影响的仿真结果;特别是预混合的甲烷/空气层流喷射火焰的NOx和CO。在OpenFOAM框架下,建立了一个模拟电场耦合预混燃烧过程的多物理计算模型。该计算框架由耦合物种、动量和能量守恒以及泊松方程求解器组成,用于求解电场分布。求解电子和离子守恒方程,以考虑动量守恒方程中的离子风体力以及由于空间电荷分布而可能产生的电场畸变。模拟是在代表试验规模实验装置的配置的随机和富燃料条件下,在一定范围的射流流速下进行的。模型预测表明,对于50kV的外加电压,在化学计量和富燃料条件下,火焰结构都会发生显著变化。离子风产生的电场使火焰明显伸展。对于富燃料条件,离子风允许富燃料流与周围空气的额外混合,并显著改变火焰结构。发现电场在化学计量和富条件下都能显著降低NOx排放。在整个流量条件范围内,在存在电场的情况下,化学计量燃料-氧化剂混合物的最大NOx减少了1.6倍。然而,对于富燃料的情况,随着流速的增加,NOx还原因子从12.0降低到1.6。对于CO排放,电场的存在降低了富燃料条件下的浓度,化学计量火焰的浓度反之亦然。对动力学的作用进行了分析和讨论。
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Electric field assisted reduction of NOx emission: A numerical study
The paper reports simulation results on the influence of a direct-current driven radial electric field on the emission characteristics; especially NOx and CO of a premixed methane/air laminar jet flame. A multi-physics computational model is developed in the OpenFOAM framework to simulate electric-field-coupled premixed combustion process. The computational framework consists of coupled species, momentum and energy conservation together with a Poisson’s equation solver to resolve the electric field distribution. Electron and ion conservation equations are resolved to consider the ionic wind body force in the momentum conservation equation and the associated possible electric field distortion due to the space charge distribution. The simulations are conducted for a stochiometric and fuel rich condition and over a range of jet flow rates for a configuration representative of a test-scale experimental setup. The model predictions show that for an applied voltage of 50 kV, the flame structure changes significantly for both the stoichiometric and fuel rich conditions. The flame is stretched significantly by the electric field due to ionic wind. For the fuel rich condition, the ionic wind allows additional mixing of the fuel rich stream with the surrounding air and drastically altering the flame structure. The electric field was found to reduce the NOx emission significantly for both stoichiometric and rich conditions. Over the entire range of flowrate conditions, the stochiometric fuel-oxidizer mixture showed a decrease in maximum NOx by a factor of 1.6 in presence of electric field. For the fuel rich case, however as the flow rate is increased, the NOx reduction factor decreased from 12.0 to 1.6. For CO emissions, the presence of electric field reduces the concentration under fuel rich conditions and vice versa for the stoichiometric flame. The role of kinetics is analyzed and discussed.
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