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Vibration analysis and system identification of mistuned multistage turbine engine rotors.

机译:失谐多级涡轮发动机转子的振动分析和系统辨识。

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摘要

The blades of a turbine engine rotor always have small, random variations in their dynamic properties due to manufacturing tolerances, wear, and other factors. These structural variations, or mistuning, can lead to localization of the vibration energy in certain blades. As a result, the maximum blade vibration and stress levels may be much higher for an actual, mistuned system than would be predicted based on the ideal, tuned design. Therefore, there has been a large amount of research devoted to understanding and predicting the structural dynamic behavior of mistuned rotors. Almost all of the work to date has been limited to single stages, or isolated bladed disks, with the assumption that the single stage vibration can be analyzed independently from the other rotor stages. However, it is shown in this dissertation that a single-stage model may provide dramatically different response predictions, compared to a true multistage model, for some operating conditions. Furthermore, multistage rotors exhibit certain types of modes and response patterns that are extended across multiple stages, which cannot be captured at all by single-stage models. The purpose of this research is to develop efficient modeling methods that extend the predictive capabilities of mistuned bladed disk simulations to multistage rotors. A key challenge in modeling multistage rotors is that the coupling among stages destroys the cyclic symmetry of the system, even for the tuned case, due to the different number of blades on each stage. In this work, this obstacle is overcome by adopting a componentbased reduced-order modeling approach, in which each stage is treated as a substructure. The new modeling technique requires only single-sector finite element models of the individual stages in order to construct a multistage model. The resulting reduced-order model is extremely compact, yet it captures the effects of blade mistuning on any or all stages. In addition, methods for system identification of multistage rotors are developed, and important applications to structural health monitoring and damage detection are explored.
机译:由于制造公差,磨损和其他因素,涡轮发动机转子的叶片的动力特性总是具有小的随机变化。这些结构变化或模糊不清会导致某些叶片中的振动能量局部化。结果,对于一个实际的,受干扰的系统,最大的叶片振动和应力水平可能比基于理想的,经过调整的设计所预测的要高得多。因此,已经有大量的研究致力于理解和预测雾化转子的结构动力学行为。迄今为止,几乎所有工作都限于单级或隔离式叶片盘,并假设可以独立于其他转子级分析单级振动。然而,本文表明,在某些操作条件下,与真正的多级模型相比,单级模型可以提供截然不同的响应预测。此外,多级转子表现出某些类型的模式和响应模式,这些模式和响应模式扩展到多级,单级模型根本无法捕获。这项研究的目的是开发有效的建模方法,将雾化叶片盘模拟的预测能力扩展到多级转子。对多级转子建模的一个关键挑战是,由于每个级上的叶片数量不同,级间的耦合破坏了系统的循环对称性,即使对于已调整的情况也是如此。在这项工作中,通过采用基于组件的降阶建模方法克服了这一障碍,该方法将每个阶段都视为子结构。新的建模技术只需要单个阶段的单扇区有限元模型即可构建多阶段模型。最终的降阶模型非常紧凑,但是它可以捕获叶片在任何或所有阶段上的失灵效应。另外,开发了用于多级转子的系统识别的方法,并探索了在结构健康监测和损伤检测中的重要应用。

著录项

  • 作者

    Song, Sang Heon.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 114 p.
  • 总页数 114
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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