首页> 外文会议>International Symposium on Combustion; 20060805-11; University of Heidelberg(DE) >Low-dimensional manifolds in direct numerical simulations of premixed turbulent flames
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Low-dimensional manifolds in direct numerical simulations of premixed turbulent flames

机译:预混湍流火焰直接数值模拟中的低维流形

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Direct numerical simulation (DNS) is a very powerful tool to evaluate the validity of new models and theories for turbulent combustion, but the application of detailed chemistry is limited. In this paper, a dimension-reduction technique called the flamelet-generated manifold (FGM) method is considered. In this method a manifold is created by solving a set of one-dimensional flamelet equations. The use of low-dimensional FGM's in DNS of premixed turbulent flames in the thin reaction zones regime is investigated. A three-dimensional (3D) DNS is performed of a spherically expanding, premixed, turbulent, methane-air flame. ID and 2D FGM's are created and used in simulations of flamelets which are subjected to stretch and curvature effects derived from the 3D DNS results. The results are compared with results from flamelet simulations with detailed chemistry. The results show that deviations from the ID FGM due to stretch and curvature effects are significant, but they appear to be embedded in a 2D manifold. This 2D manifold corresponds well with 2D FGM's that are created in different ways, but it shows large differences with a 2D manifold based on chemical kinetics alone. This indicates that an attracting low-dimensional manifold exists which is not solely determined by chemical kinetics. As a consequence, the results of the flamelet simulations using 2D FGM's are more accurate than when a ID FGM is applied: the mean error in the burning velocity is almost an order of magnitude smaller.
机译:直接数值模拟(DNS)是评估湍流燃烧新模型和理论有效性的非常强大的工具,但是详细化学方法的应用受到限制。在本文中,考虑了一种称为小火焰产生歧管(FGM)方法的降维技术。在这种方法中,通过求解一组一维小火焰方程来创建歧管。研究了低维FGM在薄反应区方案中的预混湍流DNS中的使用。对球形膨胀,预混合,湍流的甲烷空气火焰执行三维(3D)DNS。创建ID和2D FGM,并将其用于小火焰的模拟中,这些小火焰会受到3D DNS结果得出的拉伸和曲率影响。将结果与具有详细化学方法的小火焰模拟的结果进行比较。结果表明,由于拉伸和曲率效应而导致的ID FGM偏差很大,但似乎嵌入了2D流形中。该2D歧管与以不同方式创建的2D FGM非常吻合,但与仅基于化学动力学的2D歧管相比,它显示出很大的差异。这表明存在着吸引性的低维流形,它不仅是由化学动力学决定的。结果,使用2D FGM的小火焰模拟的结果比应用ID FGM时更准确:燃烧速度的平均误差几乎小一个数量级。

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