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Numerical Comparison of Leakage Flow and Rotordynamic Characteristics for Two Types of Labyrinth Seals With Baffles

机译:两种迷路密封泄漏流量和旋转动力学特性的数值比较

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摘要

Cavity separation baffles can decrease the circumferential swirl intensity of labyrinth seals and increase the seals' rotordynamic characteristics. Compared with conventional baffles, the bristle packs of brush seal baffles can contact the rotor directly, thereby further reducing the swirl intensity of the seal cavity. This paper, using the numerical model combining a multifrequency elliptical whirling orbit model, a porous medium model, and transient Reynolds-averaged Navier-Stokes (RANS) solutions, compares the leakage flow and rotordynamic characteristics of a labyrinth seal with brush-seal baffles (LSBSB) and a labyrinth seal with conventional baffles (LSCB). Ideal airflows into the seal at an inlet preswirl velocity of 0 mls (or 60mls or 100mls), total pressure of 690kPa, and temperature of 14°C. The outlet static pressure is 100 kPa and the rotational speed is 7500 r/min (surface speed of 66.8 m/s) or 15,000 r/min (surface speed of 133.5 m/s). Numerical results show that the LSBSB possesses the slightly less leakage flow rate than the LSCB due to the flow resistance of the bristle pack to the fluid. Compared with the LSCB, the LSBSB shows a higher positive effective stiffness (K_(eff)) at all considered vibration frequencies and a higher effective damping (C_(eff)) for most vibration frequencies. What is more, the crossover frequency (f_(c0)) of the LSBSB is significantly lower than that of the LSCB, which means that the LSBSB has a wider frequency range offering positive effective damping. The increasing inlet preswirl velocity and rotational speed only slightly affect the K_(eff) for both seals. The C_(eff) of two seals decreases as the inlet preswirl velocity rises, especially for the LSCB. The C_(eff) of the LSCB slightly decreases because of the increasing rotational speed. In contrast, the C_(eff) of the LSBSB is not sensitive to the changes in rotational speed. In a word, the LSBSB possesses superior rotordynamic performance to the LSCB. Note that this work also investigates the leakage flow and rotordynamic characteristics a labyrinth seal with inclined baffles (LSIB) under the condition of uo = 60m/s and n = 15,000 r/min. The inclined baffles of the LSIB are same as the backing plates of LSBSB baffles. The LSIB has rotordynamic coefficients almost equal to the LSCB. Hence, the reason why the LSBSB possesses better rotordynamic performance than that of the LSCB is the flow resistance of bristle packs of brush seal baffles, not the inclination direction variation of baffles.
机译:腔隔离挡板可以降低迷宫式密封件的圆周旋流强度,并增加密封件的旋转动力学特性。与传统的挡板相比,刷毛密封挡板的刷毛包可以直接接触转子,从而进一步降低密封腔的旋流强度。本文采用数值模型组合多频椭圆形旋转轨道模型,多孔介质模型和瞬态雷诺平均海军 - 斯托克斯(RANS)解决方案,将迷路密封与刷封挡板的泄漏流量和旋转动力学特性进行了比较( LSBSB)和具有传统挡板(LSCB)的迷宫式密封件。理想的气流在0mL(或60ml或100ml)的入口预奶速度,总压力为690kpa,温度为14℃。出口静压为100 kPa,转速为7500 r / min(表面速度为66.8 m / s)或15,000 r / min(表面速度为133.5 m / s)。数值结果表明,由于刷毛包装到流体的流动阻力,LSBSB具有比LSCB略微较小的泄漏流速。与LSCB相比,LSBSB在所有考虑的振动频率上显示出更高的正有效刚度(K_(EFF)),以及用于大多数振动频率的更高有效阻尼(C_(EFF))。更重要的是,LSBSB的交叉频率(F_(C0))显着低于LSCB的频率(F_(C0)),这意味着LSBSB具有较宽的频率范围,提供正有效阻尼。增加的入口预先生速度和转速仅略微影响两个密封件的K_(EFF)。随着入口预刺速度升高,两个密封件的C_(效干)降低,特别是对于LSCB。 LSCB的C_(EFF)由于转速增加而略微降低。相反,LSBSB的C_(EFF)对转速的变化不敏感。总之,LSBSB对LSCB具有卓越的旋转动力学性能。请注意,这项工作还调查了泄漏流量和旋转动力学特性在UO = 60m / s的条件下具有倾斜挡板(LSIB)的迷宫式密封件,N = 15,000 r / min。 LSIB的倾斜挡板与LSBSB挡板的背板相同。 LSIB具有磁盘动态系数几乎等于LSCB。因此,LSBSB具有比LSCB更好的旋转动力学性能的原因是刷毛密封挡板的刷毛包的流动阻力,而不是挡板的倾斜方向变化。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2020年第9期|091008.1-091008.17|共17页
  • 作者单位

    Institute of Turbomachinery School of Energy & Power Engineering Xi'an Jiaotong University Xi'an 710049 China;

    Institute of Turbomachinery School of Energy & Power Engineering Xi'an Jiaotong University Xi'an 710049 China;

    Institute of Turbomachinery School of Energy & Power Engineering Xi'an Jiaotong University Xi'an 710049 China;

    Institute of Turbomachinery School of Energy & Power Engineering Xi'an Jiaotong University Xi'an 710049 China;

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