首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Flamelet Modeling of Pollutant Formation in a Gas Turbine Combustion Chamber Using Detailed Chemistry for a Kerosene Model Fuel
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Flamelet Modeling of Pollutant Formation in a Gas Turbine Combustion Chamber Using Detailed Chemistry for a Kerosene Model Fuel

机译:使用煤油模型燃料的详细化学方法,对燃气轮机燃烧室中污染物形成的小火焰建模

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Combustion and pollutant formation in a gas turbine combustion chamber is investigated numerically using the Eulerian panicle fiamelet model. The code solving the unsteady flamelet equations is coupled to an unstructured computational fluid dynamics (CFD) code providing solutions for the flow and mixture field from which the flamelet parameters can be extracted. Flamelets are initialized in the fuel-rich region close to the fuel injectors of the combustor. They are represented by marker particles that are convected through the flow field. Each flamelet takes a different pathway through the combustor, leading to different histories for the flamelet parameters. Equations for the probability of finding a flamelet at a certain position and time are additionally solved in the CFD code. To model the chemical properties of kerosene, a detailed reaction mechanism for a mixture of n-decane and 1,2,4-trimethylbenzene is used. It includes a detailed NO_x submechanism and the buildup of polycyclic aromatic hydrocarbons up to four aromatic rings. The kinetically based soot model describes the formation of soot particles by inception, further growth by coagulation, and condensation as well as surface growth and oxidation. Simulation results are compared to experimental data obtained on a high-pressure rig. The influence of the model on pollutant formation is shown, and the effect of the number of flamelets on the model is investigated.
机译:使用欧拉圆锥形火焰模型对燃气轮机燃烧室中的燃烧和污染物形成进行了数值研究。解决非稳定小火焰方程的代码与非结构化计算流体力学(CFD)代码耦合,为可从中提取小火焰参数的流动和混合场提供解决方案。在靠近燃烧室燃料喷射器的富燃料区域中初始化小火焰。它们由在流场中对流的标记颗粒表示。每个小火焰通过燃烧器的路径不同,导致小火焰参数的历史不同。在CFD代码中还求解了在特定位置和时间找到小火焰的概率方程。为了模拟煤油的化学性质,使用了正癸烷和1,2,4-三甲基苯的混合物的详细反应机理。它包括详细的NO_x子机理和多达四个芳环的多环芳烃的建立。基于动力学的烟灰模型描述了烟灰颗粒从开始形成,通过凝结和凝结进一步生长以及表面生长和氧化的形成。将模拟结果与在高压钻机上获得的实验数据进行比较。显示了该模型对污染物形成的影响,并研究了小火焰数量对模型的影响。

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