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Large-eddy simulation of unsteady turbine rim sealing flows

机译:不稳定的涡轮边缘密封流动的大涡模拟

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Unsteady flow phenomena unrelated to the main gas-path blading have been identified in a number of turbine rim seal investigations. This unsteadiness has significant influence on the sealing effectiveness predicted by the conventional steady RANS (Reynolds-averaged Navier-Stokes) method, thus it is important for turbine stage design and optimisation. This paper presents CFD (computational fluid dynamics) modelling of a chute type rim seal that has been previously experimentally investigated. The study focuses on inherent large-scale unsteadiness rather than that imposed by vanes and blades or external flow. A large-eddy simulation (LES) solver is validated for a pipe flow test case and then applied to the chute rim seal rotor/stator cavity. LES, BANS and unsteady BANS (URANS) models all showed reasonable agreement with steady measurements within the disc cavity, but only the LES shows unsteadiness at a similar distinct peak frequency to that found in the experiment, at 23 times the rotational frequency. The boundary layer profile within the chute rim seal clearance has been scrutinised, which may explain the improvement of LES over BANS predictions for the pressure drop across the seal. LES results show a clockwise mean flow vortex. A more detailed sketch of the rim sealing flow unsteady flow structures is established with the help of the LES results. However, there are some significant differences between unsteadiness predicted and the measurements, and possible causes of these are discussed.
机译:在许多涡轮轮缘密封研究中已经发现了与主要气体路径叶片无关的非稳态流动现象。这种不稳定对通过常规稳定RANS(雷诺平均Navier-Stokes)方法预测的密封效果有重大影响,因此对于涡轮机级的设计和优化很重要。本文介绍了滑槽型轮辋密封件的CFD(计算流体动力学)建模,该模型先前已进行过实验研究。该研究关注的是固有的大规模不稳定,而不是叶片,叶片或外部流动所造成的不稳定。针对管道流量测试案例验证了大涡模拟(LES)求解器,然后将其应用于斜槽轮缘密封转子/定子腔。 LES,BANS和非稳态BANS(URANS)模型都显示出与椎间盘腔内稳定测量值的合理一致性,但是只有LES在与实验中发现的峰值频率相似的明显峰值频率(旋转频率的23倍)下显示不稳定。已经仔细研究了滑槽轮缘密封间隙内的边界层轮廓,这可以解释LES优于BANS预测的密封两端压降。 LES结果显示了顺时针平均流动涡旋。借助LES结果建立了轮辋密封流动非稳态流动结构的更详细的草图。但是,在预测的不稳定度和测量值之间存在一些显着差异,并讨论了这些可能的原因。

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