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DEVELOPMENT OF A GENERALIZED CONSTITUTIVE MODEL AND ITS IMPLEMENTATION IN SOIL-STRUCTURE INTERACTION (PLASTICITY).

机译:广义本构模型的发展及其在土-结构相互作用(塑性)中的实现。

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摘要

The general principles of continuum mechanics such as conservation of mass, conservation of momenta, first and second law of thermodynamics are applicable to all materials irrespective of their internal constitutions. These principles alone do not provide sufficient equations to obtain solutions for any boundary value problems. The additional equations are provided by the constitutive laws.; There are many groups of constitutive theories. Of them, the theory of plasticity describes rate independent nonlinear and inelastic behavior of materials.; A plasticity-based constitutive law is proposed herein for geological materials. The model, however, may also be used for other frictional materials. A generalized approach is followed in formulating the proposed constitutive model. The technique can be used to construct plasticity-based constitutive models for any other materials.; A series of laboratory tests are performed on cubical soil specimens using a truly triaxial testing device. The testing device is such that the samples can be subjected to a general three-dimensional state of stress.; The test data is used to determine the material constants associated with the proposed constitutive model. The model is then verified by back-predicting the stress-strain curves obtained from the laboratory.; As a final step, the proposed constitutive model is implemented into a three-dimensional finite element procedure. A number of boundary value problems are analyzed using the proposed model. The results are compared with the observation. It is found that the proposed model can effectively characterize the nonlinear and inelastic response of frictional materials. Although the proposed model is investigated with respect to soils, it can also be applied for concrete, rocks, etc.
机译:连续力学的一般原理,例如质量守恒,动量守恒,热力学第一定律和第二定律,适用于所有材料,无论其内部构造如何。仅这些原理并不能提供足够的方程式来获得任何边值问题的解决方案。附加方程由本构定律提供。本构理论有许多组。其中,可塑性理论描述了材料的速率无关的非线性和非弹性行为。本文提出了用于地质材料的基于可塑性的本构定律。但是,该模型也可以用于其他摩擦材料。在制定建议的本构模型时,采用了一种通用方法。该技术可用于为任何其他材料构造基于可塑性的本构模型。使用真正的三轴测试设备对立方土壤标本进行了一系列实验室测试。测试装置使得样品可以经受一般的三维应力状态。测试数据用于确定与建议的本构模型相关的材料常数。然后通过反向预测从实验室获得的应力-应变曲线来验证模型。最后一步,将所提出的本构模型实现为三维有限元程序。使用提出的模型分析了许多边值问题。将结果与观察结果进行比较。发现所提出的模型可以有效地表征摩擦材料的非线性和非弹性响应。尽管针对土壤对建议的模型进行了研究,但它也可以用于混凝土,岩石等。

著录项

  • 作者

    FARUQUE, MD. OMAR.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Geological Survey.; Engineering Civil.
  • 学位 Ph.D.
  • 年度 1983
  • 页码 320 p.
  • 总页数 320
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

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