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首页> 外文期刊>International journal of geomechanics >Numerical Modeling of Nonhomogeneous Behavior of Structured Soils during Triaxial Tests
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Numerical Modeling of Nonhomogeneous Behavior of Structured Soils during Triaxial Tests

机译:三轴试验中结构性土非均质性的数值模拟

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摘要

The nonhomogeneous behavior of structured soils during triaxial tests has been studied using a finite element model based on the Structured Cam Clay constitutive model with Biot-type consolidation. The effect of inhomogeneities caused by the end restraint is studied by simulating drained triaxial tests for samples with a height to diameter ratio of 2. It was discovered that with the increase in degree of soil structure with respect to the same soil at the reconstituted state, the inhomogeineities caused by the end restraint will increase. By loading the sample at different strain rates and assuming different hydraulic boundary conditions, inhomogeneities caused by partial drainage were investigated. It was found that if drainage is allowed from all faces of the specimen, fully drained tests can be carried out at strain rates about ten times higher than those required when the drainage is allowed only in the vertical direction at the top and bottom of the specimen, confirming the findings of previous studies. Both end restraint and partial drainage can cause bulging of the triaxial specimen around mid-height. Inhomogeneities due to partial drainage influence the stress-strain behavior during destructuring, a characteristic feature of a structured soil. With an increase in the strain rate, the change in voids ratio during destructuration reduces, but, in contrast, the mean effective stress at which destructuration commences was found to increase. It is shown that the stress-strain behavior of the soil calculated for a triaxial specimen with inhomogeneities, based on global measurements of the triaxial response, does not represent the true constitutive behavior of the soil inside the test specimen. For most soils analyzed, the deviatoric stress based on the global measurements is about 25% less than that for the soil inside the test specimen, when the applied axial strain is about 30%. Therefore it can be concluded that the conventional global measurements of the sample response may not accurately reflect the true stress-strain behavior of a structured soil. This finding has major implications for the interpretation of laboratory triaxial tests on structured soils.
机译:使用基于Biot型固结的结构化凸轮粘土本构模型的有限元模型,研究了结构性土在三轴试验期间的非均质性。通过对高度与直径之比为2的样品进行排水三轴试验的模拟,研究了端部约束引起的不均匀性的影响。研究发现,在重构状态下,相对于同一土壤,土壤结构的程度增加,最终约束导致的不纯正性会增加。通过以不同的应变率加载样品并假设不同的水力边界条件,研究了部分排水引起的不均匀性。已经发现,如果允许从样品的所有表面排水,则可以以比仅在样品的顶部和底部垂直方向排水的要求高十倍的应变率进行完全排水的测试。 ,确认以前的研究结果。末端约束和部分排水都可能导致三轴试样在中高度附近膨胀。由于部分排水造成的不均匀性会影响破坏过程中的应力应变行为,这是结构化土壤的特征。随着应变率的增加,破坏过程中空隙率的变化减小,但是相反,发现破坏开始时的平均有效应力增加了。结果表明,基于三轴响应的整体测量结果,针对具有不均匀性的三轴试样计算出的土壤应力-应变行为,并不代表试样内部土壤的真实本构行为。对于大多数分析的土壤,当施加的轴向应变约为30%时,基于整体测量值的偏应力比试样内部土壤的偏应力小25%。因此,可以得出结论,常规的样品响应整体测量可能无法准确反映结构化土壤的真实应力应变行为。这一发现对解释结构化土壤的实验室三轴试验具有重要意义。

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