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A direct numerical simulation study of vorticity transformation in weakly turbulent premixed flames

机译:弱湍流预混火焰中涡度变换的直接数值模拟研究

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Database obtained earlier in 3D Direct Numerical Simulations (DNS) of statistically stationary, 1D, planar turbulent flames characterized by three different density ratios a is processed in order to investigate vorticity transformation in premixed combustion under conditions of moderately weak turbulence (rms turbulent velocity and laminar flame speed are roughly equal to one another). In cases H and M characterized by sigma = 7.53 and 5.0, respectively, anisotropic generation of vorticity within the flame brush is reported. In order to study physical mechanisms that control this phenomenon, various terms in vorticity and enstrophy balance equations are analyzed, with both mean terms and terms conditioned on a particular value c of the combustion progress variable being addressed. Results indicate an important role played by baroclinic torque and dilatation in transformation of average vorticity and enstrophy within both flamelets and flame brush. Besides these widely recognized physical mechanisms, two other effects are documented. First, viscous stresses redistribute enstrophy within flamelets, but play a minor role in the balance of the mean enstrophy (Omega) over bar within turbulent flame brush. Second, negative correlation V (Omega) over bar' between fluctuations in velocity u and enstrophy gradient contributes substantially to an increase in the mean (Omega) over bar within turbulent flame brush. This negative correlation is mainly controlled by the positive correlation between fluctuations in the enstrophy and dilatation and, therefore, dilatation fluctuations substantially reduce the damping effect of the mean dilatation on the vorticity and enstrophy fields. In case L characterized by sigma = 2.5, these effects are weakly pronounced and (Omega) over bar is reduced mainly due to viscosity. Under conditions of the present DNS, vortex stretching plays a minor role in the balance of vorticity and enstrophy within turbulent flame brush in all three cases. (C) 2014 AIP Publishing LLC.
机译:处理在3D直接数值模拟(DNS)中较早获得的,以三种不同密度比a为特征的静态1D平面湍流火焰的数据库,以便研究在中等弱湍流(均方根湍流速度和层流)条件下预混燃烧中的涡度转换火焰速度大致相等)。在H和M分别以sigma = 7.53和5.0为特征的情况下,据报道火焰刷内产生了各向异性的涡流。为了研究控制该现象的物理机制,分析了涡度和涡旋平衡方程中的各种项,其中均值项和以燃烧过程变量的特定值c为条件的项。结果表明,斜压和膨胀在小火焰和火焰刷内平均涡度和涡旋的转换中起着重要作用。除了这些公认的物理机制外,还记录了其他两种影响。首先,粘性应力会在小火焰内重新分布熵,但在湍流火焰刷内的平均熵(Omega)平衡中起次要作用。其次,速度u的波动和涡旋梯度之间的bar'上的负相关V(Ω)基本上导致湍流火焰刷中bar上的平均值(Ω)增加。这种负相关性主要由涡旋和扩张的波动之间的正相关来控制,因此,膨胀波动实质上减小了平均扩张对涡旋和涡旋场的阻尼作用。如果L的特征是sigma = 2.5,则这些影响较弱,并且主要由于粘度而降低了bar上的(Ω)。在当前DNS的条件下,在所有这三种情况下,涡流拉伸在湍流火焰刷内的涡度和涡流平衡中均起着较小的作用。 (C)2014 AIP Publishing LLC。

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