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Accumulative plastic strain behaviors and microscopic structural characters of artificially freeze-thaw soft clay under dynamic cyclic loading

机译:动态循环荷载下人工冻融软黏土的累积塑性应变行为和微观结构特征

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The artificial ground freezing (AGF) technique has been extensively employed in the construction of underground structures. Due to the existence of freeze-thaw cycle in the AGF technique, the properties of soft clay deteriorate and thus larger settlement is induced during its later operation phase. To investigate the strain behaviors of the soft clay undergoing freeze-thaw cycle and discuss the differences between the soft clay undergoing and without undergoing freeze-thaw cycle under dynamic cyclic loading, a series of dynamic triaxial tests with consideration of different influencing factors as dynamic stress amplitudes, freezing temperatures, and freezing temperatures were conducted. Based on the experimental data, an empirical model for predicting the accumulative plastic strain was proposed and validated. Besides, the microscopic structural characters of the artificially freeze-thaw soft clay were explored via mercury intrusion porosimetry (MIP) tests. The results show that the total accumulative plastic strain of specimens increases with the increase of the dynamic stress amplitude, while decrease with the increase of the loading frequency. The specimens undergoing freeze-thaw cycle produces larger plastic strain, and the lower the freezing temperature is, the larger the total accumulative plastic strain is. The empirical accumulative plastic strain model, which can synthetically reflect the effects of dynamic stress amplitudes, loading frequencies, freezing temperatures and number of cyclic loading is proposed and validated. The freeze-thaw cycle has a significant effect on the strain behavior of soft clay in a way decreasing the pore volume and increasing the pore size of the specimens. Results obtained in this paper may provide meaningful references for studying the deformation characteristics of the soft clay in engineering applications.
机译:人工地面冻结(AGF)技术已广泛用于地下结构的建设中。由于AGF技术中存在冻融循环,软粘土的性能会下降,因此在其后期操作阶段会引起更大的沉降。为了研究软黏土经历冻融循环的应变特性,并讨论在动态循环载荷下软黏土经历和未经历冻融循环之间的差异,一系列考虑不同影响因素作为动应力的动态三轴试验进行振幅,冻结温度和冻结温度。基于实验数据,提出并验证了累积塑性应变预测的经验模型。此外,还通过压汞法(MIP)测试了人工冻融软黏土的微观结构特征。结果表明,试样的总累积塑性应变随着动应力幅值的增加而增加,而随加载频率的增加而减小。经受冻融循环的试样产生较大的塑性应变,而冻结温度越低,总累积塑性应变越大。提出并验证了经验累积塑性应变模型,该模型可以综合反映动应力幅值,加载频率,冻结温度和循环加载次数的影响。冻融循环以减小孔体积和增加样品孔径的方式对软黏土的应变行为产生重大影响。本文的研究结果可为研究软黏土的变形特性在工程应用中提供有意义的参考。

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