考虑科里奥利效应的叶片摩擦:基于复模态分析的简化模型

Da-wei Chen, Jiguo Zhang, Jiaguangyi Xiao, Yong Chen
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引用次数: 0

摘要

由于现代航空发动机对气动效率的要求越来越高,叶片与机匣之间的叶尖间隙越来越小。这增加了旋转叶片盘与其周围外壳之间摩擦的可能性。在最新一代的风机中,旋转效应表现出越来越重要的意义,这些风机目前具有相对较长的叶片和细长的悬臂轴。以往对碰摩过程中转子动力学的研究主要集中在简化模型上。然而,有必要同时考虑真实的叶片和科里奥利效应。基于开放源代码的叶片盘模型,研究了科里奥利效应对摩擦响应的影响。采用固定界面约简和循环对称约简相结合的两步模型约简方法。数值模型中考虑了离心效应和陀螺效应。在经典Craig-Bampton方法的基础上,采用复模态分析提高了陀螺系统的模型降阶。研究了柔性叶片盘对简化脉冲摩擦力的响应。通过时间和空间傅里叶变换,在一些节点直径线上观察到科里奥利诱发的频率分裂,这表明科里奥利效应在摩擦诱发响应中的重要性。将一种复杂模型简化方法成功地应用于循环对称叶片盘的碰摩问题。与传统的模型简化方法相比,复模态分析得到的数值结果更加合理。这为进一步考虑转子动力学的碰摩研究奠定了坚实的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rubbing Of a Bladed Disk Considering Coriolis Effect: A Reduced Model Based on Complex Modal Analysis
Due to the high demands of aerodynamic efficiency in modern aero-engines, tip clearances between blades and casings are becoming smaller. This increases the possibility of rubbing between rotating bladed disks and their surrounding casings. Rotational effects exhibit increased significance in the latest generation of fans, which currently have relatively long blade and elongated cantilevered shaft. Previous studies on the rotor dynamics during rub impact have mainly focused on simplified models. However, it is necessary to take both realistic blades and Coriolis effect into account. Based on an open-source bladed disk model, the impact of the Coriolis effect on rub-induced responses is investigated. A two-step model reduction method is adopted by combining the fixed interface reduction and cyclic symmetry reduction. Both centrifugal and gyroscopic effects are incorporated in the numerical model. Complex modal analysis, based on classical Craig-Bampton method, is used to improve the model reduction of the gyroscopic system. The response of a flexible bladed disk to a simplified pulse rubbing force is investigated. With the time and space Fourier transform, a Coriolis-induced frequency split is observed on some nodal diameter lines, which indicates the significance of the Coriolis effect in rub-induced responses. A complex model reduction has been successfully applied to the rub-impact problem of cyclic symmetric bladed disks. Compared with the classical model reduction, the numerical results obtained by complex modal analysis are more reasonable. This lays a solid foundation for further rub-impact research considering rotor dynamics.
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