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首页> 外文期刊>International Journal of Thermal Sciences >Thermohydrodynamic analysis and thermal management of hybrid bump-metal mesh foil bearings: Experimental tests and theoretical predictions
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Thermohydrodynamic analysis and thermal management of hybrid bump-metal mesh foil bearings: Experimental tests and theoretical predictions

机译:混合碰撞金属网箔轴承的热水流学分析和热管理:实验测试与理论预测

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摘要

Hybrid bump-metal mesh foil bearings (HB-MFBs) are novel gas foil bearings (GFBs) composed of foil strips and metal mesh blocks (MMBs) in bearing substructure. HB-MFBs provide more advantages than traditional foil bearings, such as high structural damping, assembly accuracy, and ability to work at high temperatures. A thermohydrodynamic model of HB-MFBs was proposed to predict the bearing temperature field with various bearing loads and rotational speeds. The theoretical model considered the complex thermal boundary of bearing substructure in this high-performance foil bearing, including the top foil, bump foil, and MMBs. A detailed thermal-transfer model of hollow rotor was introduced to calculate the heat energy transferring through the rotor shell to the surrounding ambient. Both thermal and centrifugal growth of hollow rotor were considered because of the thin-air film of GFBs to avoid bearing failure. A test rig used to measure the bearing temperature distribution with static load and various rotational speeds was built to validate the proposed thermohydrodynamic model. Different thermal managements with cooling air flow in hollow rotor and bearing substructure were applied to decrease the bearing temperature. The influence of load carry coefficients on bearing peak temperature was investigated with respect to rotational speed. A comparison of heat carry ratios between hollow rotor and bearing substructure was also conducted. The heat energy conducted through the bump foil region and MMB region was analyzed to validate the high-temperature capacity of HB-MFBs.
机译:混合碰撞金属网箔轴承(HB-MFBS)是由轴承轴结构中的箔条和金属网块(MMB)构成的新型气体箔轴承(GFBs)。 HB-MFB提供比传统箔轴承的更多优点,例如高结构阻尼,装配精度和高温工作的能力。提出了HB-MFB的热流体动力学模型,以预测各种轴承载荷和转速的轴承温度场。理论模型认为这种高性能箔轴承轴承轴结构的复杂热边界,包括顶部箔,凸块箔和MMB。引入了空心转子的详细的热转印模型,以计算通过转子壳体传递到周围环境的热能。由于GFB的薄空气薄膜认为,考虑了空心转子的热和离心生长,以避免轴承失效。建立了一种试验器,用于测量具有静态负载和各种旋转速度的轴承温度分布,以验证所提出的热流体模型。采用空心转子和轴承子结构中具有冷却空气流量的不同热管理,以降低轴承温度。研究了相对于转速研究了负载携带系数对轴承峰温度的影响。还进行了中空转子和轴承子结构之间的热携带比的比较。分析通过凸块箔区域和MMB区域传导的热能,以验证HB-MFB的高温容量。

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