采用集成密封挤压膜阻尼器的兼容混合气体轴承

B. Ertas
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引用次数: 0

摘要

本文重点介绍了为实现超临界二氧化碳(sCO2)涡轮机械的无油运行而开发的整体气膜润滑轴承概念。外部加压倾斜垫轴承概念具有灵活的轴承支持与整体密封挤压膜阻尼器。与过去研究中提出的使用模块化密封挤压膜阻尼器的初始概念不同,这项工作中的轴承设计利用先进的制造方法,产生了一个完整的单件设计,从而减少了空间包裹,降低了成本,提高了整体设计的可靠性。本文对轴承的设计和支承力系数的确定进行了详细的阐述。非旋转轴承支承试验结果显示了两种不同粘度流体的振动幅值、频率和阻尼腔压力对力系数的影响。结果表明,当激励频率增加时,刚度增加,阻尼降低。在振动幅值和频率范围内,阻尼器腔内增压可以消除挤压膜空化现象。此外,本文还提出了一种瞬态流固耦合分析(FSI),旨在深入了解在经历正弦振动运动的密闭流体体积周围的柔性单元之间的相互作用。该分析考虑了一个理想的阻尼器模型,在三个激励频率下,当膜片弹性模量变化时,有和没有振动传递柱。计算结果能够捕捉到刚度的增加和阻尼的减少,并表明边界单元的柔性影响阻尼器腔体的体积变化和相位;最终影响动腔压力和力系数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Compliant Hybrid Gas Bearing Using Integral Hermetically-Sealed Squeeze Film Dampers
The following paper focuses on an integral gas-film lubricated bearing concept developed to enable the oil-free operation of super-critical carbon dioxide (sCO2) turbomachinery. The externally pressurized tilting pad bearing concept possesses a flexible bearing support with an integral hermetically sealed squeeze film damper. Unlike the initial concepts using modular hermetic squeeze film dampers presented in past research, the bearing design in this work utilizes advanced manufacturing methods to yield an integral single piece design developed to reduce space envelope, cost, and improved overall design reliability. The paper advances a detailed description of the bearing design and identification of bearing support force coefficients. Non-rotating bearing support test results show the influence of vibration amplitude, frequency, and damper cavity pressurization on force coefficients for two different viscosity fluids. Results indicate an increase in stiffness and a decrease in damping when increasing the frequency of excitation. Damper cavity pressurization was shown to eliminate squeeze film cavitation for the vibration amplitudes and frequency range in the study. Additionally, the paper advances a transient fluid-structure interaction (FSI) analysis aimed at gaining insight on the interaction of flexible elements bounding a hermetic fluid volume experiencing sinusoidal vibratory motion. The analysis considers an idealized damper model with and without a vibration transmission post while varying diaphragm modulus of elasticity for three excitation frequencies. Computational results were able to capture the increase in stiffness and decrease in damping and show that the flexibility of the bounding elements influence the damper cavity volume change and phase; ultimately effecting dynamic cavity pressures and force coefficients.
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