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首页> 外文期刊>Journal of Vibration and Acoustics >The Static Instability Characteristics of Labyrinth Seals: Experiments and Computational Fluid Dynamics Verification
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The Static Instability Characteristics of Labyrinth Seals: Experiments and Computational Fluid Dynamics Verification

机译:迷宫式密封件的静态不稳定特性:实验和计算流体动力学验证

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摘要

The paper proposed an experimental measurement to identify the fluid-induced force and static stiffness coefficients. A three-dimensional fluid model of the labyrinth seals was also established. And the static characteristics under different eccentricities and inlet pressure were studied. Theoretical results show a good agreement with the experiment results. The labyrinth seal with different eccentricity ratios produces a de-centered fluid-induced force and a negative direct static stiffness, which cause the rotor deviating from the geometric center of the stator. Both the fluid-induced force and negative direct static stiffness coefficient with a value of-13.5 kN/m to -72 kN/m increase with increasing eccentricity and inlet pressure. Particularly, the direct static stiffness coefficient shows a relatively significant increase with a high eccentricity ratio (~>40%). The static instability is mainly due to the fact that the fluid velocity in the small clearance increases more rapidly along the leakage path. The inertial force is increased significantly and the pressure decreases. This results in a greater pressure distribution in the larger clearance. The fluid force and direct static stiffness coefficient that tend to push the rotor away from the stator center are produced, and eventually lead to the static instability of the labyrinth seal.
机译:本文提出了一种实验测量,以鉴定流体诱导的力和静态刚度系数。还建立了迷宫式密封件的三维流体模型。研究了不同偏心和入口压力下的静态特性。理论结果与实验结果吻合良好。具有不同偏心率比的迷宫式密封产生偏心的流体诱导的力和负直接静态刚度,这导致转子偏离定子的几何中心。通过增加偏心和入口压力,流体诱导的力和负直接静态刚度系数具有-13.5kN / m至-72kN / m的值增加。特别地,直接静态刚度系数显示出具有高偏心率(〜40%)的相对显着的增加。静态不稳定性主要是由于小间隙中的流体速度沿着泄漏路径迅速增加。惯性力显着增加,压力降低。这导致更大的间隙压力分布。产生倾向于将转子推远离定子中心的流体力和直接静态刚度系数,并且最终导致迷宫式密封的静态不稳定性。

著录项

  • 来源
    《Journal of Vibration and Acoustics 》 |2020年第4期| 041005.1-041005.8| 共8页
  • 作者单位

    School of Energy and Power Engineering University of Shanghai for Science and Technology 516 Jungong Road Shanghai 200093 China;

    School of Energy and Power Engineering University of Shanghai for Science and Technology 516 Jungong Road Shanghai 200093 China;

    State Grid Hunan Electric Power Company Limited Research Institute 79 Shuidian Road Changsha 410007 Hunan China;

    Department of Mechanical Engineering Texas A&M University College Station TX 77843;

    National Engineering Research Center of Turbo-Generator Vibration Southeast University 2 Sipailou Nanjing Jiangsu Province 210096 China;

    School of Energy and Power Engineering University of Shanghai for Science and Technology 516 Jungong Road Shanghai 200093 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    flow-induced vibration; rotor dynamics; stability; system identification;

    机译:流动诱发的振动;转子动力学;稳定;系统识别;

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