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Effect of Cooling Flow on the Operation of a Hot Rotor-Gas Foil Bearing System

机译:冷却流量对热转子气箔轴承系统运行的影响

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摘要

Gas foil bearings (GFBs) operating at high temperature rely on thermal management procedures that supply needed cooling flow streams to keep the bearing and rotor from overheating. Poor thermal management not only makes systems inefficient and costly to operate but could also cause bearing seizure and premature system destruction. To date, most of thermal management strategies rely on empirically based "make-and-break" techniques which are often inefficient.This dissertation presents comprehensive measurements of bearing temperatures and shaft dynamics conducted on a hollow rotor supported on two first generation GFBs. The hollow rotor (1.36 kg, 36.51 mm OD and 17.9 mm ID) is heated from inside to reach an outer surface temperature of 120 degrees C. Experiments are conducted with rotor speeds to 30 krpm and with forced streams of air cooling the bearings and rotor. Air pressurization in an enclosure at the rotor mid span forces cooling air through the test GFBs. The cooling effect of the forced external flows is most distinct when the rotor is hottest and operating at the highest speed. The temperature drop per unit cooling flow rate significantly decreases as the cooling flow rate increases. Further measurements at thermal steady state conditions and at constant rotor speeds show that the cooling flows do not affect the amplitude and frequency contents of the rotor motions. Other tests while the rotor decelerates from 30 krpm to rest show that the test system (rigid-mode) critical speeds and modal damping ratio remain nearly invariant for operation with increasing rotor temperatures and with increasing cooling flow rates. Computational model predictions reproduce with accuracy the test data. The work adds to the body of knowledge on GFB performance and operation and provides empirically derived guidance for successful integration of rotor-GFB systems.
机译:高温运行的气箔轴承(GFB)依靠热管理程序来提供所需的冷却流,以防止轴承和转子过热。不良的热管理不仅会使系统效率低下且运行成本高昂,还可能导致轴承卡死和系统过早损坏。迄今为止,大多数热管理策略都依靠基于经验的“通断”技术,这些技术通常效率不高。本文提出了在两个第一代GFB支撑的空心转子上进行的轴承温度和轴动力学的综合测量。从内部加热空心转子(1.36 kg,外径36.51 mm,内径17.9 mm),使其外表面温度达到120摄氏度。转子转速为30 krpm时进行实验,并用强制气流冷却轴承和转子。转子中跨中的外壳中的空气加压迫使冷却空气通过测试GFB。当转子最热并以最高速度运行时,强制外部流动的冷却效果最为明显。随着冷却流量的增加,单位冷却流量的温度下降显着降低。在热稳态条件下和恒定转子速度下的进一步测量表明,冷却流不影响转子运动的幅度和频率成分。转子从30 krpm减速到静止时的其他测试表明,随着转子温度的升高和冷却流量的增加,测试系统(刚性模式)的临界速度和模态阻尼比几乎保持不变。计算模型预测准确地再现了测试数据。这项工作增加了有关GFB性能和操作的知识,并为成功集成转子-GFB系统提供了根据经验得出的指导。

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    Ryu, Keun;

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  • 年度 2011
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