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Analysis of Three-Dimensional Damage Constitutive Model of Frozen Sand Based on the Influence of Intermediate Principal Stress and Temperature

机译:基于中间主应力和温度影响的冷冻砂三维损伤本构模型分析

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To study the mechanical properties of frozen soil, it is necessary to understand the damage characteristics of frozen soil. Four types of three-dimensional indoor tests of frozen sand were carried out at ?5°C, ?10°C, and ?15°C to study the mechanical damage properties. These include different stress path tests with the principal stress coefficients of 0, 0.25, 0.5, and 0.75 while analyzing the entire failure process. First, the three-dimensional compression test of frozen sand was studied to analyze the influence of temperature and intermediate principal stress coefficient on the large principal stress of frozen soil. The damage cost of frozen sand under the influence of different temperatures and intermediate principal stress coefficients was also established. Second, using the characteristics of discreteness and randomness of the distribution of the microelements inside the frozen soil and assuming that the failure of the microelement of the frozen soil obeys the Weibull distribution, the Drucker–Prager strength criterion was used as the statistical distribution variable of the microelement of the frozen soil based on the strain equivalence hypothesis, statistical theory, and continuous damage mechanics. This allows for a constitutive model of frozen sand damage under the three-dimensional stress state to be established. Finally, the model parameter values through low-temperature three-dimensional test data were able to be determined. This model allows for the physical meaning of Weibull distribution parameters F0 and m to be analyzed, and the distribution parameters with temperature and intermediate principal stress coefficient can be modified to obtain a modified frozen sand damage constitutive model. The results show that the modified damage constitutive model can simulate the entire process curve of the large principal stress-strain of frozen sand. It shows that the large principal stress of frozen sand increases with the increase of temperature and intermediate principal stress coefficient. Concurrently, the frozen sand damage constitutive model proposed in this paper can describe the deformation behavior of frozen soil under different temperature and stress paths and can be adapted to various other sediment types.
机译:为了研究冷冻土壤的机械性能,有必要了解冻土的损伤特征。冷冻砂的四种三维室内测试在α5℃,α10℃和α15℃下进行,研究机械损伤性能。这些包括不同应力系数的不同应力路径测试,其中0.25,0.5和0.75,同时分析整个故障过程。首先,研究了冷冻砂的三维压缩试验,分析了温度和中间主应力系数对冻土的巨大主应力的影响。还建立了不同温度和中间主应力系数的影响下冷冻砂的损伤成本。二,利用离散性和随机性的特点,冻土内微量元素的分布,并假设冻土的微量元素失败奥布尔分布,滴漏 - 漫步强度标准用作统计分布变量基于菌株等效假设,统计理论和连续损伤力学的冷冻土壤的微细化。这允许建立三维应力状态下的冷冻砂损伤的组成型模型。最后,能够确定通过低温三维测试数据的模型参数值。该模型允许分析Weibull分布参数F0和M的物理含义,并且可以修改具有温度和中间主应力系数的分布参数以获得改进的冷冻砂损伤本构模型。结果表明,改进的损伤本构模型可以模拟冻结砂的大主应力 - 应变的整个过程曲线。结果表明,随着温度和中间主应力系数的增加,冷冻砂的大量主应力增加。同时,本文提出的冷冻砂损伤本构模型可以描述不同温度和应力路径下冻土的变形行为,可以适应各种其他沉积物类型。

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