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Numerical simulation of a precessing vortex breakdown

机译:进动旋涡破裂的数值模拟

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The objective of this work is to present the results of time-dependent numerical predictions of a turbulent symmetry breaking vortex breakdown in a realistic gas turbine combustor. The unsteady Reynolds-averaged Navier-Stokes (URANS) equations are solved by using the k-ε two-equation model as well as by a full second-order closure using the Reynolds stress model of Speziale, Sarkar and Gatski (SSG). The results for a Reynolds number of 5.2 x 10~4, a swirl number of 0.52 and an expansion ratio of 5 show that the flow is emerging from the swirler as a spiral gyrating around a zone of strong recirculation which is also asymmetric and precessing. These flow structures which are typical for the spiral type (S-type) vortex breakdown have been confirmed by PIV and local LDA measurements in a corresponding experimental setup. Provided that high resolution meshes are employed the calculations with both turbulence models are capable to reproduce the spatial and temporal dynamics of the flow.
机译:这项工作的目的是提出在实际的燃气轮机燃烧室中湍流对称破坏涡旋破坏的时间相关数值预测的结果。通过使用k-ε两方程模型以及使用Speziale,Sarkar和Gatski(SSG)的雷诺应力模型进行的完全二阶封闭,可以求解非稳态的雷诺平均Navier-Stokes(URANS)方程。雷诺数为5.2 x 10〜4,旋流数为0.52,膨胀比为5时,结果表明,气流从旋流器中以绕强回流区域旋转的螺旋状旋转,该区域也是不对称且旋进的。在相应的实验装置中,通过PIV和局部LDA测量已经确认了螺旋型(S型)涡旋破坏的典型流动结构。假设采用高分辨率网格,则两种湍流模型的计算都能够再现流动的时空动态。

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