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Simulations of turbulent lifted jet flames with two-dimensional conditional moment closure

机译:二维条件矩闭合的湍流举升火焰模拟

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Simulations of H_2 air lifted jet flames are presented, obtained in terms of two-dimensional, first-order conditional moment closure (CMC). The unsteady CMC equation with detailed chemistry is solved without the need for operator splitting, while the accompanying flow field is determined using commercial CFD software employing a k - ε turbulence model. Computed lift-off heights and Favre-averaged species mole fractions are found to be very close to values obtained experimentally for a wide range of jet velocities and fuel-air mixtures. Simulations for which the initial condition is an attached flame and the jet velocity gradually increased do not result in lift-off, a result fully consistent with experimental observation and capturing the hysteresis behaviour of lifted flames. The stabilisation mechanism is explored by quantifying the balance of terms comprising the CMC in the lift-off region. In line with experimental data, it is found that the scalar dissipation rate at the stabilisation height is well below the extinction value, and that axial transport and molecular diffusion play a major role. The radial components of spatial convection and diffusion are always small, fully justifying the alternative approach of employing a cross-stream averaged CMC.
机译:提出了以二维一阶条件矩闭合(CMC)形式获得的H_2空气升起的喷气火焰的模拟。解决了具有详细化学反应的非定常CMC方程,无需拆分运算符,而伴随的流场是使用采用k-ε湍流模型的商用CFD软件确定的。发现计算的提离高度和Favre平均物质的摩尔分数非常接近于各种喷射速度和燃料-空气混合物的实验获得的值。初始条件是附着的火焰且射流速度逐渐提高的模拟不会导致升空,该结果与实验观察完全一致并捕获了升起的火焰的滞后行为。通过量化提离区域中包含CMC的项的平衡来探索稳定机制。根据实验数据,发现稳定高度处的标量耗散率远低于消光值,并且轴向传输和分子扩散起主要作用。空间对流和扩散的径向分量始终很小,这完全证明采用交叉流平均CMC的替代方法是合理的。

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