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Nouvelles techniques pratiques pour la modelisation du comportement dynamique des syst`emes eau-structure.

机译:用于建模水结构系统动态行为的新实用技术。

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摘要

The dynamic or seismic behavior of hydraulic structures is, as for conventional structures, essential to assure protection of human lives. These types of analyses also aim at limiting structural damage caused by an earthquake to prevent rupture or collapse of the structure. The particularity of these hydraulic structures is that not only the internal displacements are caused by the earthquake, but also by the hydrodynamic loads resulting from fluid-structure interaction. This thesis reviews the existing complex and simplified methods to perform such dynamic analysis for hydraulic structures. For the complex existing methods, attention is placed on the difficulties arising from their use. Particularly, interest is given in this work on the use of transmitting boundary conditions to simulate the semi infinity of reservoirs. A procedure has been developed to estimate the error that these boundary conditions can introduce in finite element dynamic analysis. Depending on their formulation and location, we showed that they can considerably affect the response of such fluid-structure systems.;For practical engineering applications, simplified procedures are still needed to evaluate the dynamic behavior of structures in contact with water. A review of the existing simplified procedures showed that these methods are based on numerous simplifications that can affect the prediction of the dynamic behavior of such systems. One of the main objectives of this thesis has been to develop new simplified methods that are more accurate than those existing. First, a new spectral analysis method has been proposed. Expressions for the fundamental frequency of fluid-structure systems, key parameter of spectral analysis, have been developed. We show that this new technique can easily be implemented in a spreadsheet or program, and that its calculation time is near instantaneous. When compared to more complex analytical or numerical method, this new procedure yields excellent prediction of the dynamic behavior of fluid-structure systems.;Spectral analyses ignore the transient and oscillatory nature of vibrations. When such dynamic analyses show that some areas of the studied structure undergo excessive stresses, time history analyses allow a better estimate of the extent of these zones as well as a time notion of these excessive stresses. Furthermore, the existing spectral analyses methods for fluid-structure systems account only for the static effect of higher modes. Thought this can generally be sufficient for dams, for flexible structures the dynamic effect of these modes should be accounted for. New methods have been developed for fluid-structure systems to account for these observations as well as the flexibility of foundations. A first method was developed to study structures in contact with one or two finite or infinite water domains. This new technique includes flexibility of structures and foundations as well as the dynamic effect of higher vibration modes and variations of the levels of the water domains. Extension of this method was performed to study beam structures in contact with fluids. These new developments have also allowed extending existing analytical formulations of the dynamic properties of a dry beam to a new formulation that includes effect of fluid-structure interaction. The method yields a very good estimate of the dynamic behavior of beam-fluid systems or beam like structures in contact with fluid. Finally, a Modified Accelerogram Method (MAM) has been developed to modify the design earthquake into a new accelerogram that directly accounts for the effect of fluid-structure interaction. This new accelerogram can therefore be applied directly to the dry structure (i.e. without water) in order to calculate the dynamic response of the fluid-structure system. This original technique can include numerous parameters that influence the dynamic response of such systems and allows to treat analytically the fluid-structure interaction while keeping the advantages of finite element modeling.
机译:与常规结构一样,水力结构的动态或地震行为对于确保保护生命至关重要。这些类型的分析还旨在限制地震引起的结构破坏,以防止结构破裂或坍塌。这些水工结构的特殊性在于,不仅内部位移是由地震引起的,而且是由流固耦合引起的流体动力载荷引起的。本文对现有的复杂,简化的方法进行水工结构动力分析进行了综述。对于现有的复杂方法,应注意使用它们带来的困难。特别是,在这项工作中,人们对使用传输边界条件来模拟储层的半无限感兴趣。已经开发出一种方法来估计这些边界条件可能在有限元动力学分析中引入的误差。根据它们的配方和位置,我们表明它们会大大影响此类流体结构系统的响应。对于实际工程应用,仍需要简化的过程来评估与水接触的结构的动态行为。对现有简化程序的回顾表明,这些方法基于许多简化,这些简化会影响此类系统动态行为的预测。本文的主要目的之一是开发比现有方法更精确的简化方法。首先,提出了一种新的光谱分析方法。已经开发了流体结构系统的基本频率的表达式,这是频谱分析的关键参数。我们证明了这项新技术可以轻松地在电子表格或程序中实现,并且其计算时间几乎是瞬时的。与更复杂的分析或数值方法相比,该新方法可以很好地预测流体结构系统的动力学行为。频谱分析忽略了振动的瞬态和振荡性质。当这种动态分析表明所研究结构的某些区域承受过大的应力时,时程分析可以更好地估计这些区域的范围以及这些过应力的时间概念。此外,用于流体结构系统的现有频谱分析方法仅考虑了较高模态的静态影响。认为这对于大坝通常是足够的,对于柔性结构,应考虑这些模式的动力效应。已经为流体结构系统开发了新方法,以解决这些问题以及地基的灵活性问题。开发了第一种方法来研究与一个或两个有限或无限水域接触的结构。这项新技术包括结构和基础的灵活性,以及​​更高振动模式的动态效果和水域水位的变化。对该方法进行了扩展,以研究与流体接触的梁结构。这些新的发展也使得将干梁动力特性的现有分析公式扩展到包括流体-结构相互作用影响的新公式。该方法可以很好地估计束流系统或与流体接触的类梁结构的动力学行为。最后,已开发出一种改进的加速度计方法(MAM),以将设计地震修改为一个新的加速度计,该加速度计直接考虑了流固耦合的影响。因此,该新加速度图可以直接应用于干燥结构(即不加水),以便计算流体结构系统的动力响应。这项原始技术可以包括许多参数,这些参数会影响此类系统的动态响应,并允许在保持有限元建模优势的同时,对流固耦合进行分析处理。

著录项

  • 作者

    Miquel, Benjamin.;

  • 作者单位

    Ecole Polytechnique, Montreal (Canada).;

  • 授予单位 Ecole Polytechnique, Montreal (Canada).;
  • 学科 Engineering Geophysical.;Engineering Civil.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 299 p.
  • 总页数 299
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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