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Nonlinear machine foundation vibrations and optimal structural control considering soil-structure interaction effects.

机译:考虑土-结构相互作用的非线性机器基础振动和最优结构控制。

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摘要

This dissertation is composed of two parts: (1) Nonlinear machine foundation vibrations; and (2) Optimal structural control considering soil-structure interaction effects. The presentation is organized in a form such that these two parts of study are self-contained and can be read separately.; In most of the analyses for structure-foundation-soil systems, the soil behavior is usually assumed linear to simplify the complicated soil-structure interaction (SSI) problems. However, it is generally recognized that the dynamic response of soils is nonlinear, hysteretic, irreversible, and rate-dependent at sufficiently high strain levels. Very little work has been done to incorporate the nonlinear effects into SSI models, partly due to a lack of efficient mathematical tools to deal with the computationally intensive time-stepping and iterations associated with nonlinear time-domain analyses. The first part of this dissertation is an attempt to tackle this difficulty with the development of an efficient finite element methodology. This methodology is applied to study the machine foundation vibration problems with the emphases on how and in what extent the nonlinear factors influence the SSI response.; Active structural control has been a prosperously developing field of research in civil engineering in recent years. It provides an effective alternative approach for reducing the vibration response of structures, in addition to the conventional means of using material rigidity to resist external excitations. However, the majority of structural models utilized in this research are assumed to be fixed-base systems, which may induce considerable ineffectiveness in the control algorithm, particularly for actively controlled structures in seismic zones. The major difficulty in incorporating soil-structure interaction in structural control comes from the fact that an SSI system is usually formulated in the frequency domain, whereas conventional optimal control problem is solved in the time domain. In the second part of this dissertation, an effort is made to develop a methodology to include SSI effects in the optimal control algorithms using an equivalent fixed-base structural model to represent the whole SSI system. The control effectiveness of considering soil-structure interaction is investigated for both the SDOF and MDOF structural models and for externally and internally controlled systems.
机译:本文由两部分组成:(1)非线性机器基础振动; (2)考虑土壤-结构相互作用的最优结构控制。演讲的组织形式使学习的这两部分是独立的,可以分别阅读。在大多数结构-基础-土壤系统分析中,通常将土壤行为假定为线性,以简化复杂的土壤-结构相互作用(SSI)问题。但是,人们普遍认为,在足够高的应变水平下,土壤的动力响应是非线性的,滞后的,不可逆的并且与速率有关。将非线性效应纳入SSI模型的工作很少,部分是由于缺乏有效的数学工具来处理计算量大的时间步长和与非线性时域分析相关的迭代。本文的第一部分是尝试通过开发有效的有限元方法来解决这一难题。该方法用于研究机器基础振动问题,重点是非线性因素如何以及在何种程度上影响SSI响应。近年来,主动结构控制已成为土木工程研究的一个蓬勃发展的领域。除了使用材料刚度抵抗外部激励的常规方法外,它还提供了一种有效的替代方法来减少结构的振动响应。但是,本研究中使用的大多数结构模型被假定为固定基础系统,这可能会导致控制算法的效率大大降低,特别是对于地震区域中的主动控制结构。将土壤-结构相互作用纳入结构控制的主要困难在于,通常在频域中制定SSI系统,而在时域中解决传统的最优控制问题。在本论文的第二部分中,我们努力开发一种方法,使用等效的固定基结构模型来代表整个SSI系统,从而将SSI效应包括在最优控制算法中。对于SDOF和MDOF结构模型以及外部和内部控制系统,研究了考虑土壤与结构相互作用的控制有效性。

著录项

  • 作者

    Wu, Wen-Hwa.;

  • 作者单位

    Stanford University.;

  • 授予单位 Stanford University.;
  • 学科 Engineering Civil.; Applied Mechanics.
  • 学位 Ph.D.
  • 年度 1994
  • 页码 260 p.
  • 总页数 260
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;应用力学;
  • 关键词

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