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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >Steady computations of ingress through gas turbine rim seals
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Steady computations of ingress through gas turbine rim seals

机译:稳定计算燃气轮机轮辋密封件的进入量

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摘要

In gas turbines, rim seals are fitted at the periphery of the wheel-space between the turbine disc and its adjacent casing; their purpose is to reduce the ingress of hot mainstream gases. This paper describes the use of a three-dimensional, steady-state model to investigate ingress through engine-representative single and double radial-clearance seals. The three-dimensional Reynolds-averaged Navier-Stokes computations of a simplified turbine stage are carried out using the commercial computational fluid dynamics code ANSYS CFX v13, and the model is based on the geometry of an experimental test rig at the University of Bath. The measured variation of the peak-to-trough pressure difference in the annulus, which is the main driving mechanism for ingress, is reproduced well qualitatively by the computations; quantitatively, the maximum local differences between computation and experiment are less than 20% of the measured peak-to-trough circumferential variation. The radial variation of swirl ratio in the rotor-stator wheel-space is well predicted over the range of flow rates and rim seal geometries studied. The radial distribution of sealing effectiveness determined from experiments is reproduced inward of the mixing region near the seal clearance over a range of sealing flow rates; some over-prediction of the effectiveness was found for both seals at high radius, probably due to limitations in the turbulent mixing modelling. The three-dimensional steady-state approach may be a practical tool for the engine designer where there is a lack of experimental data, providing quantitative predictions of the flow structure within the rotor-stator wheel-space and qualitative predictions of the sealing effectiveness for a given rim seal geometry.
机译:在燃气轮机中,轮缘密封件安装在涡轮机盘与其相邻壳体之间的叶轮空间的外围。它们的目的是减少热主流气体的进入。本文介绍了如何使用三维稳态模型来研究具有代表性的发动机单向和双向径向游隙密封件的进入情况。简化的涡轮级的三维雷诺平均Navier-Stokes计算是使用商业计算流体力学代码ANSYS CFX v13进行的,该模型基于巴斯大学的实验测试台的几何形状。通过计算可以很好地定性地再现所测量的环空中峰谷间压差的变化,这是进入的主要驱动机制。在定量上,计算和实验之间的最大局部差异小于所测得的峰谷周向变化的20%。在所研究的流量和轮辋密封几何范围内,可以很好地预测转子-定子叶轮空间中涡流比的径向变化。根据实验确定的密封效果的径向分布是在一定的密封流量范围内,在密封间隙附近的混合区域内复制的;对两个密封件在大半径处的有效性都有些过高的预测,可能是由于湍流混合模型的局限性所致。对于缺乏实验数据的发动机设计者来说,三维稳态方法可能是一种实用的工具,它可以定量预测转子-定子叶轮空间内的流动结构,并定量地预测密封效果。给定轮辋密封的几何形状。

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