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Numerical Investigation of a Turbulent Jet Flame With a Compact Skeletal Mechanism

机译:具有紧凑骨架的湍流射流火焰的数值研究

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The present work assesses the capabilities of a compact skeletal mechanism, derived using an in-house reduction code, to accurately model chemical processes in a turbulent CH_4/H_2/ N_2 flame. To this end, a numerical investigation of the DLR-A flame is performed using the free and open-source code openfoam with the derived mechanism. Specifically, the numerical investigation is performed using the Reynolds-averaged Navier-Stokes (RANS) approach and a compact skeletal mechanism consisting of 51 elementary reactions among 21 species. The skeletal mechanism is derived from the GRI3.0 mechanism using an improved multistage reduction method. The k — ε model is used as a closure for the RANS equations, while the source terms in the species and energy transport equations are closed by the partially stirred reactor (PaSR) model. The radiation term is modeled by the P-1 model. The numerical results show a good agreement with the experimental data.
机译:本工作评估使用内部还原代码得出的紧凑骨骼机制的功能,以准确地模拟湍流CH_4 / H_2 / N_2火焰中的化学过程。为此,使用带有派生机制的免费开放源代码openfoam对DLR-A火焰进行了数值研究。具体而言,使用雷诺平均Navier-Stokes(RANS)方法和由21个物种中的51个基本反应组成的紧凑骨架机制进行了数值研究。骨骼机制是使用改进的多级还原方法从GRI3.0机制获得的。 k-ε模型用作RANS方程的闭合式,而物种和能量传输方程式中的源项由部分搅拌反应器(PaSR)模型闭合。辐射项由P-1模型建模。数值结果与实验数据吻合良好。

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