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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Analysis of Leaf Seal Leakage Performance Under the Influence of Manufacturing Variations Using Experiment and Computational Fluid Dynamics
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Analysis of Leaf Seal Leakage Performance Under the Influence of Manufacturing Variations Using Experiment and Computational Fluid Dynamics

机译:使用实验和计算流体动力学在制造变化影响下的叶密封泄漏性能分析

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In this paper, test data are combined with results from two different computational fluid dynamics (CFD) models to investigate the leakage performance of leaf seals. Experimental data are gathered for centric rotor position using a rotating test rig at various rotational speeds, inlet pressures, and preswirl velocities. The test results are compared to brush and labyrinth seal leakage data from previous studies and reveal elevated leakage rates of the leaf seal. As the tested leaf seals are subject to thermal leaf deformation from welding during the manufacturing process, the influence of geometry variations within the leaf pack on leakage performance is investigated with the help of numerical simulations. Both a fully resolved leaf model and a modeling approach based on porous media are used. The CFD models are validated based on pressure measurements within the up-and downstream coverplate gaps at three different radii. Both CFD models show good agreement with test data for different inlet parameters. A variation of cold clearance shows moderate influence on leakage and small clearances can be brought into context with hydrodynamic lift-up indicated by experimental leakage data. Much higher sensitivity on leakage mass flow is predicted for variations in leaf spacing at the leaf root and leaf tip. The latter is discussed as an explanation for the measured leakage of the test seal with its manufacturing variations, while the first quantitatively shows optimization potential at the design stage of leaf seals.
机译:在本文中,测试数据与来自两个不同的计算流体动力学(CFD)模型的结果组合,以研究叶密封件的泄漏性能。在各种转速,入口压力和预刺速度下,使用旋转试验台聚集实验数据。将测试结果与先前研究的刷和迷宫密封泄漏数据进行比较,并揭示叶密封的升高漏率。由于测试的叶片在制造过程中受到焊接的热叶片变形,因此在数值模拟的帮助下,研究了叶包内叶包内的几何变化对泄漏性能的影响。使用基于多孔介质的完全解决的叶片模型和建模方法。基于三个不同的半径的上下游覆盖板间隙内的压力测量验证了CFD模型。两种CFD模型都与不同入口参数的测试数据显示出良好的一致性。冷清除的变化显示了对泄漏的适度影响,并且可以通过实验泄漏数据表明的流体动力升降来引入小额间隙。预测叶根和叶尖的叶片间距的变化预测对泄漏质量流量的更高敏感性。后者被讨论为对测试密封的测量泄漏具有其制造变化的说明,而第一定量地示出了叶密封叶设计阶段的优化电位。

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