首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Leakage and Cavity Pressures in an Interlocking Labyrinth Gas Seal: Measurements Versus Predictions
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Leakage and Cavity Pressures in an Interlocking Labyrinth Gas Seal: Measurements Versus Predictions

机译:联锁迷宫式气封中的泄漏和空腔压力:测量与预测

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Gas labyrinth seals (LS) restrict secondary flows (leakage) in turbomachinery and their impact on the efficiency and rotordynamic stability of high-pressure compressors and steam turbines can hardly be overstated. Among seal types, the interlocking labyrinth seal (ILS), having teeth on both the rotor and the stator, is able to reduce leakage up to 30% compared to other LSs with either all teeth on the rotor (TOR) or all teeth on the stator. This paper introduces a revamped facility to test gas seals for their rotordynamic performance and presents measurements of the leakage and cavity pressures in a five teeth ILS. The seal with overall length/diameter L/D = 0.3 and small tip clearance C-r/D = 0.00133 is supplied with air at T = 298 K and increasing inlet pressure Pin = 0.3-1.3 MPa, while the exit pressure/inlet pressure ratio PR = P-out/P-in is set to range from 0.3 to 0.8. The rotor speed varies from null to 10 krpm (79 m/s max. surface speed). During the tests, instrumentation records the seal mass flow (m(over dot)) and static pressure in each cavity. In parallel, a bulk-flow model (BFM) and a computational fluid dynamics (CFD) analysis predict the flow field and deliver the same performance characteristics, namely leakage and cavity pressures. Both measurements and predictions agree closely (within 5%) and demonstrate that the seal mass flow rate is independent of rotor speed. A modified flow factor Phi = m root T/(P-in root(1) - PR)(2) characterizes best the seal mass flow with a unique magnitude for all pressure conditions, P-in and PR.
机译:气体迷宫式密封(LS)限制了涡轮机械中的二次流(泄漏),并且它们对高压压缩机和蒸汽轮机的效率和转子动力稳定性的影响很难被夸大。在密封类型中,转子和定子上都有齿的互锁迷宫式密封(ILS)与转子(TOR)上的所有齿或转子上所有齿上的其他LS相比,能够将泄漏减少多达30%。定子。本文介绍了一种经过改造的设备,以测试气密封件的转子动力学性能,并介绍了五齿ILS中泄漏和腔体压力的测量结果。总长/直径L / D = 0.3和小尖端间隙Cr / D = 0.00133的密封件在T = 298 K时向空气供应,入口压力Pin = 0.3-1.3 MPa升高,而出口压力/入口压力比PR = P输出/ P输入设置为0.3到0.8。转子速度从零到10 krpm(最大表面速度为79 m / s)变化。在测试过程中,仪器会记录每个腔体中的密封质量流量(m(点上))和静压力。同时,大流量模型(BFM)和计算流体力学(CFD)分析可预测流场并提供相同的性能特征,即泄漏和腔体压力。测量结果和预测结果非常吻合(在5%之内),并表明密封质量流量与转子速度无关。修改后的流量因数Phi = m root T /(P-in root(1)-PR)(2)最能体现密封质量流量,在所有压力条件下(P-in和PR)都具有唯一的大小。

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