Prediction of Geometrically Induced Localization Effects Using a Subset of Nominal System Modes

Thomas Maywald, Christoph Heinrich, A. Kühhorn, S. Schrape, T. Backhaus
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引用次数: 1

Abstract

It is widely known that the vibration characteristics of blade integrated discs can dramatically change in the presence of manufacturing tolerances and wear. In this context, an increasing number of publications discuss the influence of the geometrical variability of blades on phenomena like frequency splitting and mode localization. This contribution is investigating the validity of a stiffness modified reduced order model for predicting the modal parameters of a geometrically mistuned compressor stage. In detail, the natural frequencies and mode shapes, as well as the corresponding mistuning patterns, are experimentally determined for an exemplary rotor. Furthermore, a blue light fringe projector is used to identify the geometrical differences between the actual rotor and the nominal blisk design. With the help of these digitization results, a realistic finite element model of the whole compressor stage is generated. Beyond that, a reduced order model is implemented based on the nominal design intention. Finally, the numerical predictions of the geometrically updated finite element model and the stiffness modified reduced order model are compared to the vibration measurement results. The investigation is completed by pointing out the benefits and limitations of the SNM-approach in the context of geometrically induced mistuning effects.
利用标称系统模态子集预测几何诱导的局部效应
众所周知,由于制造公差和磨损的存在,叶片集成盘的振动特性会发生巨大变化。在此背景下,越来越多的出版物讨论了叶片几何变异性对频率分裂和模态局部化等现象的影响。该贡献是研究刚度修正降阶模型的有效性,用于预测几何失谐压缩机级的模态参数。详细地,实验确定了一个示例转子的固有频率和模态振型,以及相应的失谐模式。此外,蓝色光条纹投影仪用于识别实际转子和标称圆盘设计之间的几何差异。在这些数字化结果的帮助下,生成了整个压气机级的真实有限元模型。除此之外,还基于标称设计意图实现了降阶模型。最后,将几何更新有限元模型和刚度修正降阶模型的数值预测结果与振动实测结果进行了比较。通过指出snm方法在几何诱导的失谐效应背景下的优点和局限性,完成了调查。
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