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Dynamic analysis and design strategies for mistuned bladed disks.

机译:雾化刀片式磁盘的动态分析和设计策略。

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摘要

Bladed disks are used in many important engineering applications, including turbine engine rotors. Typically, each disk-blade sector in a bladed disk is assumed to be identical, and the bladed disk is analyzed based on a single sector model. However, due to manufacturing tolerances, operational wear, and other unavoidable factors, an actual bladed disk always has discrepancies among individual sectors, called mistuning. Even small mistuning can alter dramatically the vibration response of a bladed disk compared to the ideal, tuned system. In particular, the vibration energy may be concentrated in a few blades, leading to increased stress levels and fatigue problems. Moreover, since mistuning destroys cyclic symmetry, the whole assembly model must be analyzed, which is computationally expensive.; In this work, a new reduced-order vibration modeling technique for mistuned bladed disks is presented. This is called the component mode mistuning (CMM) method, and it allows for easy implementation of mistuning and yields more efficient and accurate reduced order models (ROMs) compared to previous methods. Based on the CMM method, a mistuning identification technique is also developed. In order to account for the difference between an actual bladed disk and the finite element model, the concept of "cyclic modeling error" is introduced in the CMM formulation, and a model updating procedure is implemented to compensate for this error. As a result, the identification method becomes more accurate and robust. In addition, because the increase in maximum blade response due to mistuning is used for design safety evaluation, two methods for calculating the upper bound of this response amplification are presented. Then, as a design strategy for significantly reducing the worst-case amplification, the use of intentional mistuning in a nominal design is investigated. Based on key observations from an analysis of vibration energy flow in bladed disks, some guidelines are proposed for reducing the design space for intentional mistuning patterns, so that an optimal or near-optimal pattern can be found without requiring an expensive optimization process. Finally, a novel reduced-order modeling technique is presented for a system subject to large, geometric mistuning or design changes. A ROM constructed by this new technique shows fast convergence and excellent accuracy in capturing the motion of a system featuring large deviations from the original design, which cannot be handled with existing small-mistuning ROMs.
机译:叶片盘用于许多重要的工程应用中,包括涡轮发动机转子。通常,假定刀片式磁盘中的每个磁盘刀片扇区都相同,并且基于单个扇区模型分析刀片式磁盘。但是,由于制造公差,操作磨损和其他不可避免的因素,实际的刀片式磁盘在各个扇区之间始终存在差异,称为雾化。与理想的调谐系统相比,即使是很小的失谐也会极大地改变刀片式磁盘的振动响应。特别是,振动能量可能集中在几个叶片中,从而导致应力水平增加和疲劳问题。此外,由于雾化破坏了循环对称性,因此必须分析整个装配模型,这在计算上是昂贵的。在这项工作中,提出了一种用于雾化叶片盘的新的降阶振动建模技术。这被称为组件模式微调(CMM)方法,与以前的方法相比,它允许轻松实现微调并产生更有效,更准确的降阶模型(ROM)。基于CMM方法,还开发了模糊识别技术。为了解决实际刀片式磁盘与有限元模型之间的差异,在CMM公式中引入了“循环建模误差”的概念,并实施了模型更新程序来补偿该误差。结果,识别方法变得更加准确和健壮。另外,由于将由于雾化引起的最大叶片响应的增加用于设计安全性评估,因此提出了两种计算该响应放大率上限的方法。然后,作为显着减少最坏情况放大的设计策略,研究了在名义设计中使用故意模糊的情况。基于对刀片式磁盘中振动能量流进行分析的关键观察结果,提出了一些指南,以减少有意雾化图案的设计空间,从而无需昂贵的优化过程即可找到最佳或接近最佳的图案。最后,提出了一种新颖的降阶建模技术,用于受大型,几何模糊或设计更改影响的系统。通过这种新技术构造的ROM在捕获与原始设计有较大偏差的系统运动时,显示出快速收敛性和出色的准确性,而现有的小失误ROM无法处理这种偏差。

著录项

  • 作者

    Lim, Sang-Ho.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 220 p.
  • 总页数 220
  • 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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