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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Extended Three-Dimensional Thermo-Hydrodynamic Model of Radial Foil Bearing: Case Studies on Thermal Behaviors and Dynamic Characteristics in Gas Turbine Simulator
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Extended Three-Dimensional Thermo-Hydrodynamic Model of Radial Foil Bearing: Case Studies on Thermal Behaviors and Dynamic Characteristics in Gas Turbine Simulator

机译:径向铝箔轴承的三维热工水力扩展模型:以燃气轮机模拟器的热行为和动力学特性为例

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摘要

Environment-friendly microturbomachinery has its broad current and future applications in fuel cells, power generation, oil-free industrial blowers and compressors, small aero propulsions' engines for missiles and small aircrafts, automotive turbo chargers, etc. Air foil bearings (AFBs) have been one of the popular subjects in recent years due to evergrowing interests in the environment-friendly oil-free turbomachinery. AFBs have many noticeable attractive features compared to conventional rigid-walled air/gas bearings such as improved damping and tolerance to minor shaft misalignment and external shocks. In addition, the low viscosity of air or gas allows very low power consumption even at high speeds. A turbine simulator mimicking 50 kW power generation gas turbine was designed. The turbine simulator can generate the same thermodynamic conditions and axial thrust load as the actual gas turbine. In this paper, the 3-D thermo-hydrody-namic (THD) model developed for single radial AFB was further extended to the turbine simulator configuration by extending the solution domain to the surrounding structures including two plenums, bearing sleeve, housing, and rotor exposed to the plenums. In addition, a computational fluid dynamic (CFD) model on the leading edge groove region was developed for better prediction of inlet thermal boundary conditions for the bearing. Several case studies are presented through computer simulations for hydrodynamically preloaded three-pad radial AFB in the hot section. It is found that both bearing and rotor should be provided with cooling air to maintain the temperature of both the rotor and top foil below 300 ℃. It is also found that the higher thermal contact resistance between the rotor and hot impellers reduces the axial temperature gradient of the rotor. Dynamic performance of the bearing was evaluated using the linear perturbation method for operation at elevated temperature. The softening effect of the bump foil at elevated temperature results in a decrease of both stiffness and damping coefficients compared to the values at room temperature.
机译:环保的微型涡轮机械在燃料电池,发电,无油工业鼓风机和压缩机,用于导弹和小型飞机的小型航空推进发动机,汽车涡轮增压器等方面具有广泛的当前和未来应用。空气膜轴承(AFB)具有由于对环保型无油涡轮机械的兴趣日益浓厚,因此成为近年来的热门话题之一。与传统的刚性壁空气/气体轴承相比,AFB具有许多明显的吸引人的特征,例如,改进的阻尼以及对较小的轴未对准和外部冲击的耐受性。另外,空气或气体的低粘度即使在高速下也允许非常低的功耗。设计了模仿50 kW发电燃气轮机的涡轮机模拟器。涡轮模拟器可以产生与实际燃气轮机相同的热力学条件和轴向推力负荷。在本文中,通过将解决方案域扩展到包括两个气室,轴承套,壳体和转子的周围结构,将为单径向AFB开发的3-D热流体动力(THD)模型进一步扩展到了涡轮仿真器配置。暴露于气室。此外,在前缘凹槽区域上建立了计算流体动力学(CFD)模型,以更好地预测轴承的入口热边界条件。通过计算机模拟对热区中的流体动力预加载三板径向AFB进行了一些案例研究。结果发现,轴承和转子都应提供冷却空气,以使转子和顶箔的温度均保持在300℃以下。还发现,转子和热叶轮之间的较高的热接触电阻减小了转子的轴向温度梯度。使用线性摄动法评估了轴承的动态性能,以便在高温下运行。与室温下的值相比,凸块箔在高温下的软化作用导致刚度和阻尼系数的降低。

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