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ALGEBRAIC MODELS FOR TURBULENT TRANSPORTS IN PREMIXED FLAMES

机译:混合火焰中湍流传输的代数模型

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The thermal expansion induced by the chemical reactions taking place in a turbulent reactive flow ofpremixed reactants affects the velocity field so strongly that turbulent transports can be controlled by reaction rather than by turbulence. Moreover, thermal expansion is well-known to cause countergradient turbulent diffusion as well as flame-generated turbulence phenomena. In the present article, a splitting procedure of the velocity field is used that allows the identification of two different effects of the thermal expansion in the specific fla-melets regime of turbulent premixed combustion: (i) the thermal expansion occurring through the local flames (direct effect,) and (ii) the effect of thermal expansion on the velocity field associated to the growth of the flame surface (indirect effect). Algebraic closures for the turbulent transport terms of mass and momentum are proposed where the effect of the turbulent mixing (nonreactive effect) is modeled by classical closures, i.e., gradient law, while the contributions associated with thermal expansion are closed by taking advantage offlamelet relationships. Finally, this simple model is applied to the numerical simulation of a turbulent flame stabilized by the sudden expansion of a 2D channel. Corresponding results are satisfactorily compared with experimental data and confirm the ability of the model to represent the behavior of turbulent transports in premixed flames.
机译:由预混合反应物的湍流反应流中发生的化学反应引起的热膨胀强烈影响速度场,从而可以通过反应而不是湍流来控制湍流的传输。此外,众所周知,热膨胀会引起逆梯度湍流扩散以及火焰产生的湍流现象。在本文中,使用了速度场的分裂过程,该过程允许识别湍流预混燃烧的特定小火焰区域中热膨胀的两种不同影响:(i)通过局部火焰发生的热膨胀(直接作用)和(ii)热膨胀对与火焰表面生长相关的速度场的影响(间接作用)。提出了关于质量和动量的湍流输运项的代数闭合,其中湍流混合的作用(非反应性作用)是通过经典闭合(即梯度定律)建模的,而与热膨胀相关的贡献是通过利用小火焰关系来闭合的。最后,这个简单的模型被应用于湍流火焰的数值模拟,该湍流火焰通过2D通道的突然扩展而稳定。相应的结果与实验数据进行了令人满意的比较,并证实了模型代表预混火焰中湍流传输行为的能力。

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