A Thermoelastohydrodynamic Analysis for the Static Performance of High-Speed Heavy Load Tilting-Pad Journal Bearing Operating in the Turbulent Flow Regime and Comparisons to Test Data

Hirotoshi Arihara, Yukiyoshi Kameyama, Y. Baba, L. Andrés
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引用次数: 11

Abstract

Tilting-pad journal bearings (TPJBs) ensure rotordynamic stability that could otherwise produce dangerously large amplitude rotor oil-whirl/whip motions in high speed rotating machinery. Currently, highly efficient turbo compressors demand an ever increasing rotor surface speed and specific load on its support bearings. The accurate prediction of bearing performance is vital to guarantee reliable products, specifically with regard to reducing maximum bearing pad temperature and drag power losses, and operating with the least flow rate while still maximizing load capacity. The hydrodynamic pressure and heat generation in an oil film acting on a bearing pad produce significant mechanical and thermal deformations that change the oil film geometry (clearance and preload) to largely affect the bearing performance, static and dynamic. In addition, a high surface speed bearing often operates in the turbulent flow regime that produces a notable increase in power loss and a drop in maximum pad temperature. This paper details a thermoelastohydrodynamic (TEHD) analysis model applied to TPJBs, presents predictions for their steady-load performance, and discusses comparisons with experimental results to validate the model. The test bearing has four pads with a load between pads configuration; its length L = 76.2 mm and shaft diameter D = 101.6 mm (L/D = 0.75). The rotor top speed is 22.6 krpm, i.e. 120 m/s surface speed, and the maximum specific load is 2.94 MPa for an applied load of 23 kN. The test procedure records shaft speed and applied load, oil supply pressure/temperature and flow rate, and also measures the pads’ temperature and shaft temperature, as well as the discharge oil (sump) temperature. The TEHD model couples a generalized Reynolds equation for the hydrodynamic pressure generation with a three-dimensional energy transport equation for the film temperature. The pad mechanical deformation due to pressure utilizes the finite elemental method, whereas an analytical model estimates thermally induced pad crowning deformations. For operation beyond the laminar flow regime, the analysis incorporates the eddy viscosity concept for fully developed turbulent flow operation. Current predictions demonstrate the influence of pressure and temperature fields on the pads mechanical and thermally induced deformation fields, and also show static performance characteristics such as bearing power loss, flow rate, and pad temperatures. The comparisons of test results and analysis results reveal that turbulent flow effects significantly reduce the pads’ maximum temperature while increasing the bearing power loss. Turbulent flow mixing increases the diffusion of thermal energy and makes more uniform the temperature profile across the film.
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高速重载斜垫滑动轴承在湍流工况下静态性能的热弹流体动力学分析及与试验数据的比较
倾斜垫轴颈轴承(tpjb)保证了转子的动态稳定性,否则在高速旋转机械中会产生危险的大振幅转子油旋/鞭子运动。目前,高效涡轮压缩机需要不断增加转子表面速度和比负载的支持轴承。轴承性能的准确预测对于保证可靠的产品至关重要,特别是在降低最大轴瓦温度和阻力功率损失方面,以及在最大限度地提高负载能力的同时以最小的流量运行。作用在轴承座上的油膜中的动水压力和热产生显著的机械和热变形,改变油膜的几何形状(间隙和预载荷),从而在很大程度上影响轴承的静态和动态性能。此外,高表面转速轴承通常在紊流状态下运行,这会导致功率损失显著增加,最大垫块温度下降。本文详细介绍了应用于tpjb的热弹流体力学(TEHD)分析模型,对其稳态性能进行了预测,并与实验结果进行了比较,以验证模型的有效性。测试轴承有四个垫片,垫片之间有负载配置;长度L = 76.2 mm,轴径D = 101.6 mm (L/D = 0.75)。转子的最高转速为22.6 krpm,即120 m/s的表面速度,在施加23 kN的载荷下,最大比载荷为2.94 MPa。测试程序记录轴的转速和施加的载荷,供油压力/温度和流量,还测量垫片的温度和轴的温度,以及排放油(油池)的温度。TEHD模型将水动压力产生的广义雷诺方程与膜温度的三维能量输运方程耦合在一起。由于压力引起的垫块机械变形采用有限元法,而分析模型估计热致垫块顶部变形。对于层流以外的操作,分析纳入了涡流粘度概念,以充分发展湍流操作。目前的预测显示了压力和温度场对垫的机械和热诱导变形场的影响,也显示了静态性能特征,如轴承功率损失、流量和垫温度。试验结果与分析结果的对比表明,湍流效应显著降低了焊盘的最高温度,同时增加了轴承的功率损失。紊流混合增加了热能的扩散,使膜上的温度分布更加均匀。
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