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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >A New Bump-Type Foil Bearing Structure Analytical Model
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A New Bump-Type Foil Bearing Structure Analytical Model

机译:新型凹凸型箔轴承结构分析模型

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A gas bearing of bump foil type comprises an underlying structure made of one or several strips of corrugated sheet metal covered by a top foil surface. The fluid film pressure needs to be coupled with the behavior of the structure for obtaining the whole bearing characteristics. Unlike in classical elasto-aerodynamic models, a foil bearing (FB) structure has a very particular behavior due to friction interfaces, bump interactions, and nonisotropic stiffness. Some authors have studied this complex behavior with the help of three-dimensional finite element simulations. These simulations evidenced a lack of reliable analytical models that can be easily implemented in a FB prediction code. The models found in the literature tend to overestimate the foil flexibility because most of them do not consider the interactions between bumps that are highly important. The present work then develops a model that describes the FB structure as a multidegree of freedom system of interacting bumps. Each bump includes three degrees of freedom linked with elementary springs. The stiffnesses of these springs are analytically expressed so that the model can be adjusted for any dimensions and material properties. Once the stiffness matrix of the whole FB structure is obtained, the entire static system is solved taking friction into account. Despite its relative simplicity, comparisons with finite elements simulations for various static load distributions and friction coefficients show a good correlation. This analytical model has been integrated into a foil bearing prediction code. The load capacity of a first generation foil bearing was then calculated using this structure model as well as other simplified theoretical approaches. Significant differences were observed, revealing the paramount influence of the structure on the static and dynamic characteristics of the foil bearing. Some experimental investigations of the static stiffness of the structure were also realized for complete foil bearings. The structure reaction force was calculated for a shaft displacement with zero rotation speed, using either the multidegree of freedom model or the usual stiffness formulas. The comparisons between theoretical and experimental results also tend to confirm the importance of taking into account the bump interactions in determining the response of the structure.
机译:凸箔类型的气体轴承包括由被顶部箔片表面覆盖的一条或几条波纹状金属薄板制成的底层结构。流体膜压力需要与结构的行为耦合,以获得整体轴承特性。与经典的弹性空气动力学模型不同,箔轴承(FB)结构由于摩擦界面,碰撞相互作用和非等向刚度而具有非常特殊的行为。一些作者借助三维有限元模拟研究了这种复杂的行为。这些模拟证明缺乏可靠的分析模型,该模型可以轻松地在FB预测代码中实现。文献中发现的模型往往高估了箔片的柔韧性,因为它们中的大多数都没有考虑非常重要的凸块之间的相互作用。然后,本工作开发了一个模型,该模型将FB结构描述为相互作用的凸点的多自由度系统。每个凸块包括与基本弹簧相关联的三个自由度。这些弹簧的刚度通过解析表示,因此可以针对任何尺寸和材料属性调整模型。一旦获得了整个FB结构的刚度矩阵,就可以考虑摩擦来求解整个静态系统。尽管它相对简单,但与有限元模拟对各种静态载荷分布和摩擦系数的比较显示出良好的相关性。该分析模型已集成到箔轴承预测代码中。然后,使用此结构模型以及其他简化的理论方法来计算第一代箔轴承的负载能力。观察到显着差异,揭示了结构对箔轴承的静态和动态特性的最重要影响。对于完整的箔轴承,还对结构的静态刚度进行了一些实验研究。使用多自由度模型或常用的刚度公式,针对零转速的轴位移计算了结构反作用力。理论和实验结果之间的比较也倾向于确认在确定结构的响应时考虑碰撞相互作用的重要性。

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