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Component-based and parametric reduced-order modeling methods for vibration analysis of complex structures.

机译:基于组件的参数化降阶建模方法,用于复杂结构的振动分析。

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摘要

Noise, vibration and harshness (NVH) is of increasing concern for the automotive and aerospace industries, due to the desire for new materials and lighter structures and the increasing use of sensitive on-board electronics. Finite element analysis (FEA) and statistical energy analysis (SEA) are popular and well-established numerical simulation methods for NVH analysis in the low- and high-frequency range, respectively. However for the mid-frequency range, there is no readily available method to handle the vibration analysis of the full complex structure in a systematic fashion with acceptable efficiency and accuracy relative to a lower or higher frequency region. Thus, the mid-frequency range is regarded as one of the last frontiers in linear structural dynamics, and the search for vibration analysis methods for the mid-frequency range remains active and intense.; The work presented in this dissertation is based on FEA and component mode synthesis (CMS), and the focus is on improving the capabilities of FEA- and CMS-based methods and pushing the scope of their applications up into the mid-frequency range. Computational cost is a major limiting factor for using FEA and CMS in the mid-frequency range. Therefore, in this dissertation, major improvements are made to CMS to achieve better efficiency. First, an interface reduction method is employed to obtain a more compact reduced-order model (ROM), so that further dynamic analysis based on the ROM, such as forced vibration response and power flow analysis, can be performed with better efficiency. Second, a matrix-filtration method is applied to improve the efficiency of both substructure analysis and interface reduction. Third, quasi-static modes are used to construct a highly compact ROM for dynamic analysis in the mid-frequency range. Another key issue for FEA and CMS in the mid-frequency range is the significant effect of parameter uncertainties on the dynamic response. Therefore, in this dissertation, the CMS method is further integrated with a parametric modeling approach to obtain a component-based parametric reduced-order modeling method. Numerical results are presented for applications to both simple models and complex vehicle models. It is shown that the proposed methods can handle probabilistic vibration analysis and design of complex structural models in both the low- and mid-frequency range, with impressive efficiency and accuracy.
机译:由于对新材料和更轻的结构的需求以及对机载敏感电子设备的越来越多的使用,噪声,振动和粗糙度(NVH)在汽车和航空航天工业中越来越受到关注。有限元分析(FEA)和统计能量分析(SEA)是分别用于低频和高频范围内NVH分析的流行且公认的数值模拟方法。但是,对于中频范围,尚不存在以相对可接受的效率和准确度相对于较低或较高频率区域以系统方式处理完整复杂结构的振动分析的简便方法。因此,中频范围被认为是线性结构动力学的最后前沿之一,并且对中频范围的振动分析方法的研究仍然活跃而激烈。本文的工作是基于有限元分析和组件模式综合(CMS),重点是提高基于FEA和CMS的方法的功能,并将其应用范围推向中频范围。计算成本是在中频范围内使用FEA和CMS的主要限制因素。因此,本文对CMS进行了重大改进,以实现更高的效率。首先,采用接口简化方法来获得更紧凑的降阶模型(ROM),以便可以以更高的效率执行基于ROM的进一步动态分析,例如强制振动响应和潮流分析。其次,采用矩阵过滤方法来提高子结构分析和界面缩减的效率。第三,准静态模式用于构建高度紧凑的ROM,以便在中频范围内进行动态分析。 FEA和CMS在中频范围内的另一个关键问题是参数不确定性对动态响应的重大影响。因此,本文将CMS方法与参数化建模方法进一步集成,以获得基于构件的参数化降阶建模方法。给出了数值结果,可应用于简单模型和复杂车辆模型。结果表明,所提出的方法可以处理低频和中频范围内的概率振动分析和复杂结构模型的设计,效率和准确性令人印象深刻。

著录项

  • 作者

    Zhang, Geng.;

  • 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 125 p.
  • 总页数 125
  • 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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