首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >ROTORDYNAMIC COMPUTATIONAL AND EXPERIMENTAL CHARACTERIZATION OF A CONVERGENT HONEYCOMB SEAL TESTED WITH NEGATIVE PRE-SWIRL, HIGH PRESSURE WITH STATIC ECCENTRICITY AND ANGULAR MISALIGNMENT
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ROTORDYNAMIC COMPUTATIONAL AND EXPERIMENTAL CHARACTERIZATION OF A CONVERGENT HONEYCOMB SEAL TESTED WITH NEGATIVE PRE-SWIRL, HIGH PRESSURE WITH STATIC ECCENTRICITY AND ANGULAR MISALIGNMENT

机译:旋转动力学计算和实验表征的收敛蜂窝密封用负面先涡旋,高压,静态偏心和角度未对准测试

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Hole-pattern or honeycomb seals have been commonly used for many years in the Oil & Gas industry as damper seals for turbomachinery. The main motivation has been to introduce additional damping to improve the shaft rotordynamic stability operating under high pressure conditions. Experience has shown that the dynamic and even static characteristics of those seals are very sensitive to the operating clearance profile as well as the installation tolerances. Rotordynamic stability is related not only to the seal effective damping but to the effective stiffness as well. In fact, for this kind of seal, the effective stiffness can be high enough to alter the rotor system's natural frequency. The seal stiffness is strictly related to the tapering contour: if the clearance profile changes from divergent to convergent, the effective stiffness may change from a strong negative to a strong positive magnitude, thus avoiding the rotor natural frequency drop as it is detrimental for the stability. Unfortunately the effective damping is reduced at the same time but this can be improved using proper devices to keep the pre-swirl low or even negative (e.g. swirl brakes, shunt holes). This paper presents the results from an extended test campaign performed in a high-speed rotor test rig equipped with active magnetic bearings working under high pressure (14krpm, 200bar gas inlet pressure), with the aim to validate the rotordynamic characteristics of a negative pre-swirl, convergent honeycomb seal and demonstrate its ability to effectively act as a gas bearing as well as a seal. The test plan included variations of inlet pressure, differential pressure (given the same inlet pressure) as well as rotational speed in order to fully validate the seal behaviour. This kind of test was performed in a "dynamic mode", exciting the spinning test rotor through a pair of AMBs along linear orbits. Additionally the impact of the seal to rotor static eccentricity and the seal to rotor angular misalignment were both experimentally investigated and compared to relevant CFD simulations. This kind of test was performed in a "static mode", imposing through the AMBs the required eccentricity / angular misalignment and then measuring the forces needed to keep the rotor in the original position. "Dynamic mode" test was also performed in order to check the impact of the seal static eccentricity on its dynamic behaviour. Finally the test results were compared with predictions from a state of the art bulk flow code in order to check the predictability level for future design applications.
机译:孔板或蜂窝密封件在石油和天然气工业中常用多年,作为涡轮机的阻尼密封件。主要的动机是引入额外的阻尼,以改善在高压条件下运行的轴旋转动力稳定性。经验表明,这些密封件的动态甚至静态特征对操作间型材以及安装公差非常敏感。旋转动力学稳定性不仅有效地有效阻尼,而且还具有有效刚度。实际上,对于这种密封,有效的刚度可以足够高,以改变转子系统的自然频率。密封刚度与锥形轮廓严格相关:如果间隙曲线从发散到会聚变化,则有效刚度可能从强度变化到强的正幅度,从而避免转子自然频率降,因为它对稳定性有害。遗憾的是,有效阻尼在同一时间减小,但是可以使用适当的装置来改善这一点以使预旋流低甚至是负(例如旋流制动器,分流孔)。本文提出了在高速转子试验台上执行的扩展测试活动的结果,该试验活动在高压(14krpm,200bar燃气进气压力)下工作的主动磁轴承,旨在验证负面的磁阻力特性漩涡,会聚蜂窝密封,并证明其能够有效充当气体轴承以及密封。测试计划包括入口压力的变化,差压(给定相同的入口压力)以及转速,以便完全验证密封行为。这种测试在“动态模式”中进行,沿着沿着线性轨道的一对ambs激发旋转试验转子。另外,密封对转子静电偏心的影响和对转子角度未对流的密封均在实验上研究并与相关的CFD模拟相比。这种测试以“静态模式”执行,施加通过AMBS所需的偏心/角度未对准,然后测量将转子保持在原始位置所需的力。还执行“动态模式”测试,以检查密封静电偏心对其动态行为的影响。最后,将测试结果与来自艺术散装流代码的状态的预测进行了比较,以检查未来设计应用的可预测性水平。

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