首页> 外文学位 >CONSTITUTIVE RELATIONS FOR SATURATED SAND UNDER UNDRAINED CYCLIC LOADING (PORE PRESSURE, PLASTICITY).
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CONSTITUTIVE RELATIONS FOR SATURATED SAND UNDER UNDRAINED CYCLIC LOADING (PORE PRESSURE, PLASTICITY).

机译:循环荷载(孔隙压力,塑性)下饱和砂的本构关系。

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摘要

An elastic-plastic model is proposed to compute the pore pressure, stresses and strains in saturated loose and medium dense sand under undrained, general 3-D cyclic loading. The model uses an incremental theory of plasticity formulation which includes the concepts of isotropic and kinematic hardening and a field of elastic-plastic moduli. This field is defined in deviatoric stress space by the size and orientation of a series of nested yield surfaces. The behavior of the sand under loading is characterized by the translation of each yield surface and the decrease (degradation) of the associated moduli.; The degradation (state) parameter used is the normalized excess pore pressure, u*, which is calculated from a modified version of the total deviatoric strain trajectory, (lamda)'. This modified (lamda)' takes into account the physics of pore pressure buildup in sands and is based on a simplified 1-D pore pressure model for cyclic strain-controlled tests. The pore pressure increase in undrained strain-controlled tests was found to be a function of only the number of cycles and the amplitude of the applied cyclic strain. The parameters of the elastic-plastic model, including the initial positions and sizes of the yield surfaces, are easily obtained from a series of undrained cyclic axial triaxial strain-controlled tests. The motion of the yield surfaces in space can be visualized using a two-dimensional simplified deviatoric stress space.; The 1-D simplified pore pressure model was verified by correctly predicting the pore pressure buildup for Banding and Monterey #0 Sands under axial triaxial, torsional triaxial and direct simple shear loading. The elastic-plastic model parameters were determined from a series of axial triaxial tests on Banding sand. Additional soil test results were predicted using the elastic-plastic model, and were verified by actually running the tests on the same Banding sand. The cyclic tests run include axial triaxial with variable cyclic strain, solid cylinder axial torsional and a combined axial and torsional triaxial test.; A method to correct the measured pore pressures for the effect of membrane penetration during undrained cyclic triaxial tests is also presented.
机译:提出了一种弹塑性模型,用于计算在不排水的一般3D循环荷载下饱和的松散和中等密度砂中的孔隙压力,应力和应变。该模型使用可塑性公式化的增量理论,其中包括各向同性和运动学硬化的概念以及弹塑性模量领域。该场在偏应力空间中由一系列嵌套屈服面的大小和方向定义。砂在载荷下的行为特征是每个屈服面的平移和相关模量的降低(退化)。所使用的降解(状态)参数是归一化的多余孔隙压力u *,它是根据总偏斜应变轨迹(lamda)'的修正版本计算得出的。这种改进的(λ)′考虑了沙子中孔隙压力累积的物理现象,并且基于用于循环应变控制试验的简化的一维孔隙压力模型。发现在不排水的应变控制试验中,孔隙压力的增加仅是循环次数和所施加循环应变幅度的函数。弹塑性模型的参数,包括屈服面的初始位置和大小,可以通过一系列不排水的循环轴向三轴应变控制试验轻松获得。屈服面在空间中的运动可以使用二维简化的偏应力空间可视化。通过正确预测Banding和Monterey#0砂在轴向三轴,扭转三轴和直接简单剪力作用下的孔隙压力累积,从而验证了一维简化孔隙压力模型。弹塑性模型参数是通过在Banding砂上进行的一系列轴向三轴试验确定的。使用弹塑性模型预测了另外的土壤测试结果,并通过在相同的Banding沙上实际运行测试进行了验证。循环试验包括具有可变循环应变的轴向三轴试验,实心圆柱体轴向扭转试验以及轴向和扭转三轴组合试验。还提出了一种在不排水的循环三轴测试过程中校正测得的孔隙压力以影响膜渗透的方法。

著录项

  • 作者

    PIERCE, WILLIAM GRANT.;

  • 作者单位

    Rensselaer Polytechnic Institute.;

  • 授予单位 Rensselaer Polytechnic Institute.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 1985
  • 页码 261 p.
  • 总页数 261
  • 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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