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Computational Fluid Dynamics Investigation of Labyrinth Seal Leakage Performance Depending on Mushroom-Shaped Tooth Wear

机译:取决于蘑菇形齿磨损的迷宫密封件泄漏性能的计算流体动力学研究

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摘要

Conventional labyrinth seal applications in turbomachinery encounter a permanent teeth tip damage and wear during transitional operations. This is the dominant issue that causes unpredictable seal leakage performance degradation. Since the gap between the rotor and the stator changes depending on engine transitional operations, labyrinth teeth located on the rotor/stator wear against the statorlrotor. This wear is observed mostly in the form of the labyrinth teeth becoming a mushroom shape. It is known that, as a result of this tooth tip wear, leakage performance permanently decreases, which negatively affects the engine's overall efficiency. However, very limited information about leakage performance degradation caused by mushroom wear is available in open literature. This paper presents a study that numerically quantifies leakage values for various radii of mushroom-shaped labyrinth teeth by changing tooth-surface clearance, pressure ratio, number of teeth, and rotor speed. Analyzed parameters and their ranges are mushroom radius (R = 0-0.508 mm), clearance (c,_r=0.254-2.032mm), pressure ratio (R_p = 1.5-3.5), number of teeth (n_t = 1-12), and rotor speed (n = 0-80 krpm). Computational fluid dynamics (CFD) analyses were carried out by employing compressible turbulent flow in 2D axisymmetrical coordinate system. CFD leakage results were also compared with well-known labyrinth seal semi-empirical correlations. Given a constant clearance, leakage increases with the size of the mushroom radius that forms on the tooth. This behavior is caused by less flow separation and flow disturbance, and the vena contracta effect for flow over the smoothly shaped mushroom tooth tip compared to the sharp-edged tooth tip. This leakage increase is higher when the tooth tip wear is considered as an addition to the unworn physical clearance, since the clearance dominates the leakage. The leakage affected by the number of teeth was also quantified with respect to the mushroom radius. The rotational effect was also studied as a secondary parameter.
机译:涡轮机械中的常规迷宫式密封应用在过渡操作期间会遇到永久性的齿尖损坏和磨损。这是导致不可预测的密封泄漏性能下降的主要问题。由于转子和定子之间的间隙会根据发动机的过渡运行而变化,因此位于转子/定子上的迷宫齿会相对于定子转子磨损。这种磨损主要以迷宫齿变成蘑菇形的形式观察到。众所周知,由于这种齿顶磨损,泄漏性能永久降低,这对发动机的整体效率产生负面影响。然而,公开文献中关于蘑菇磨损引起的泄漏性能下降的信息非常有限。本文提出了一项研究,通过改变齿面间隙,压力比,齿数和转子速度,对蘑菇形迷宫齿各种半径的泄漏值进行数值量化。分析参数及其范围是蘑菇半径(R = 0-0.508 mm),游隙(c,_r = 0.254-2.032mm),压力比(R_p = 1.5-3.5),齿数(n_t = 1-12),和转子转速(n = 0-80 krpm)。通过在二维轴对称坐标系中采用可压缩湍流来进行计算流体动力学(CFD)分析。 CFD泄漏结果也与众所周知的迷宫式密封的半经验相关性进行了比较。给定恒定的间隙,泄漏会随着在牙齿上形成的蘑菇形半径的大小而增加。这种现象是由于较少的流动分离和流动扰动引起的,并且与锋利的牙齿尖端相比,在光滑形状的蘑菇形牙齿尖端上流动的腔收缩效应。当齿顶磨损被认为是未磨损的物理间隙的补充时,这种泄漏增加会更高,因为间隙占主导地位。还针对蘑菇半径量化了受齿数影响的泄漏。还研究了旋转效果作为辅助参数。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2016年第3期|032503.1-032503.10|共10页
  • 作者单位

    Department of Mechanical Engineering, Kirikkale University, Yahsihan, Kirikkale 71450, Turkey;

    Department of Mechanical Engineering, Kirikkale University, Yahsihan, Kirikkale 71450, Turkey;

    Department of Mechanical Engineering, Kirikkale University, Yahsihan, Kirikkale 71450, Turkey;

    TUSAS Engine Industries, Inc. (TEI), Eskisehir 26003, Turkey;

    TUSAS Engine Industries, Inc. (TEI), Eskisehir 26003, Turkey;

    TUSAS Engine Industries, Inc. (TEI), Eskisehir 26003, Turkey;

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  • 正文语种 eng
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  • 入库时间 2022-08-18 00:20:21

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