首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Design Space of Foil Bearings for Closed-Loop Supercritical CO_2 Power Cycles Based on Three-Dimensional Thermohydrodynamic Analyses
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Design Space of Foil Bearings for Closed-Loop Supercritical CO_2 Power Cycles Based on Three-Dimensional Thermohydrodynamic Analyses

机译:基于三维热流体动力学分析的闭环超临界CO_2功率循环箔轴承设计空间

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The closed-loop Brayton cycle with supercritical CO_2 (S-CO_2) as an operating fluid is an attractive alternative to conventional power cycles due to very high power density. Foil gas bearings using CO_2 are the most promising for small S-CO_2 turbomachinery but there are many problems to address: large power loss due to high flow turbulence, lack of design/analysis tool due to nonideal gas behavior, and lack of load capacity when they are used for large systems. This paper presents high-level design/analysis tool involving three-dimensional (3D) thermohydrodynamic (THD) analyses of radial foil bearings considering real gas effect and flow turbulence inside the film. Simulations are performed for radial foil bearing with 34.9 mm in diameter and lubricated with CO_2 and N_2 under various ambient conditions up to above 40 bar gauge pressure. The simulation results using the turbulence model still underpredict the measured data in open literature. However, the error between the prediction and measurements decreases as either speed or ambient pressure increases. In addition, general behavior of substantial increase in power loss with ambient pressure agrees with the measured data. The simulation results indicate the importance of detailed THD analysis of the foil bearings for prediction of power loss under severe turbulent condition. A conceptual layout of rotor system for 10 MWe S-CO_2 loop is also presented along with realistic rotor weight and bearing load. A hybrid foil bearing with diameter of 102 mm is suggested for gas generator rotor, and its power losses and minimum film thicknesses at various operating conditions are presented.
机译:由于具有非常高的功率密度,使用超临界CO_2(S-CO_2)作为工作流体的闭环布雷顿循环是常规动力循环的有吸引力的替代方案。对于小型S-CO_2涡轮机械,使用CO_2的箔式气体轴承是最有前途的,但有许多问题需要解决:由于高湍流而导致的功率损失大,由于不理想的气体行为而导致缺乏设计/分析工具以及在使用时缺乏负载能力它们用于大型系统。本文介绍了一种高级设计/分析工具,其中包括对径向箔轴承的三维(3D)热流体动力学(THD)分析,其中考虑了薄膜内部的实际气体效应和流动湍流。对直径为34.9 mm的径向箔轴承进行了仿真,并在高达40 bar表压的各种环境条件下用CO_2和N_2进行了润滑。使用湍流模型的仿真结果仍然低估了公开文献中的测量数据。但是,随着速度或环境压力的增加,预测和测量之间的误差会减小。此外,功率损耗随环境压力而显着增加的一般行为与测量数据一致。仿真结果表明,对箔轴承进行详细的THD分析对于预测严重湍流条件下的功率损耗非常重要。还介绍了用于10 MWe S-CO_2回路的转子系统的概念布局,以及实际的转子重量和轴承负载。建议为气体发生器转子使用直径为102 mm的混合箔轴承,并提出在各种运行条件下的功率损耗和最小膜厚。

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