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Measurements of Leakage and Power Loss in a Hybrid Brush Seal

机译:混合电刷密封中的泄漏和功率损耗的测量

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摘要

Simplicity, low cost, and easy replacement make labyrinth seals the primary seal type in gas turbines. However, excessive leakage and potential for rotordynamic instability are well known issues. Brush seals effectively control leakage in air breathing engines, albeit only applied for relatively low pressure differentials. Hybrid brush seals (HBSs) are an alternative to resolve poor reliability resulting from bristle tip wear while also allowing for reverse rotation operation. The novel configuration incorporates pads contacting the shaft, which under rotor spinning lifts off due to the generation of a hydrodynamic pressure. The ensuing gas film prevents intermittent contact, thus lowering the operating temperature and thermal distortions and even eliminating bristle wear. The hybrid brush seal improves sealing, is more durable and reliable than conventional brush seals, and allows reverse shaft rotation without seal damage. This paper presents measurements of power loss and leakage in a HBS for increasing pressure differentials over a range of rotor speeds. The test HBS, Haynes-25 bristle pack (~850 bristles / cm) and 45 deg lay angle, is 166.4 mm in diameter and integrates 20-arcuate pads connected with thin electrical-discharge machined webs (EDM-webs) to the seal casing. The webs are designed with low radial stiffness to allow for rotor excursions and high axial stiffness to avoid pad pitching motions resulting from high pressure differentials across the seal. Measured drag power at low rotor speeds (<11 m/s at 1300 rpm) decreases as the pressure differential across the seal increases. At a fixed rotor speed, a significant drop in drag torque (and drag power) ensues as the supply pressure increases, thus demonstrating that a gas film separates the rotor from the seal pads. Additionally, the operating temperature measured at the rotor/seal interface remains approximately constant (~24℃) during tests with shaft rotation (power loss and drag torque measurements) under pressurized conditions, indicating that the rotor and seal pads are not in contact. Flow rate measurements at room temperature (25 ℃) show an improved sealing ability with a leakage reduction of about 36% when compared with a first generation shoed-brush seal. The HBS calculated effective clearance (~50 μm) is approximately 70% smaller than the radial clearance (~180 μm) of an ideal noncontacting seal with similar rotor diameter. Improved brush seal technology will increase the efficiency of gas turbines while also aiding to improve the engine stability and to reduce vibrations.
机译:简单,低成本和易于更换使迷宫式密封成为燃气轮机的主要密封类型。但是,过大的泄漏和转子动力学不稳定的可能性是众所周知的问题。刷式密封件有效地控制了呼吸发动机中的泄漏,尽管仅适用于相对较低的压差。混合刷式密封件(HBS)是解决因刷毛尖端磨损而导致可靠性差的替代方案,同时还允许反向旋转操作。新颖的配置包括与轴接触的垫片,在垫片旋转时,垫片由于流体动压的产生而抬起。随后的气膜可防止间歇性接触,从而降低了工作温度和热变形,甚至消除了刷毛的磨损。混合式电刷密封提高了密封性能,比传统的电刷密封更耐用,更可靠,并且允许轴反向旋转而不会损坏密封。本文介绍了在HBS中功率损耗和泄漏的测量结果,以在一定范围的转子速度范围内增加压差。测试的HBS为Haynes-25刷毛套件(约850刷毛/ cm),倾斜角度为45度,直径为166.4 mm,并将20个弧形的垫片与薄​​的放电加工网(EDM-web)连接到密封外壳上。腹板的径向刚度低,可防止转子偏移,轴向刚度高,可避免因密封件上的高压差而引起的垫板俯仰运动。低转速(在1300 rpm时<11 m / s)下测得的阻力随密封件两端压差的增加而减小。在固定的转子速度下,随着供应压力的增加,拖曳扭矩(和拖曳功率)随之显着下降,从而证明了气膜将转子与密封垫分开。此外,在加压条件下进行轴旋转测试(功率损耗和阻力转矩测量)时,在转子/密封界面处测得的工作温度大致保持恒定(〜24℃),这表明转子和密封垫未接触。与第一代磨擦式密封相比,在室温(25℃)下的流量测量显示出改进的密封能力,泄漏减少了约36%。 HBS计算出的有效间隙(〜50μm)比具有类似转子直径的理想非接触密封的径向间隙(〜180μm)小约70%。改进的电刷密封技术将提高燃气轮机的效率,同时还有助于提高发动机稳定性并减少振动。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2009年第1期|012505.1-012505.6|共6页
  • 作者单位

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

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

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

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