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Acceleration generation due to strain localization of saturated clay specimen based on dynamic soil-water coupled finite deformation analysis

机译:基于动态土水耦合有限变形分析的饱和黏土试件应变局部化产生加速度

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摘要

In the conventional bifurcation and strain localization analyses of geomaterials, the inertia forces are generally ignored, based on the quasi-static equilibrium equation. Even though a great deal of literature exists on dynamic strain localization analyses, information on acceleration generation during the formation of shear bands has not been emphasized. Inspired by the acoustic emission phenomenon in laboratory tests and the seismic acceleration related to the slippage of faults, a dynamic soil-water coupled strain localization analysis is performed in the present paper on a saturated rectangular clay specimen subjected to constant cell pressure under plane strain conditions, employing the SYS Cam-clay model as the elasto-plastic constitutive model for the soil skeleton. An initial geometrical imperfection was introduced to the specimen to trigger one single shear band, and the following results were found: (1) Two types of oscillation occurred within the specimen during acceleration when the specimen was subjected to compression deformation at a constant rate, namely, (a) one caused by the sudden external compression and (b) the second induced by the formation of strain localization/a shear band. With the occurrence of the shear band, if, for example, the vertical rate was equivalent to about 10 cm/s, the accelerations that occurred within the specimen were in the order of several thousand gal, which is similar to those measured during earthquakes; (2) The effects of the time increment, the mesh division, the initial confining pressure, the OCR and the stress-control loading on the generated acceleration in (b) were investigated in detail. It was found that under stress control, even though the formation of the shear band was similar to that under displacement control, the induced acceleration behaved quite differently.
机译:在传统的土工材料分叉和应变局部化分析中,通常基于准静态平衡方程忽略惯性力。尽管存在大量有关动态应变局部分析的文献,但并未强调有关剪切带形成过程中加速度产生的信息。受到实验室测试中的声发射现象和与断层滑动相关的地震加速度的启发,本文对在平面应变条件下受到恒定单元压力的饱和矩形黏土试样进行了动态土水耦合应变局部化分析。 ,采用SYS Cam-clay模型作为土壤骨架的弹塑性本构模型。将最初的几何缺陷引入到试样中以触发一个单一剪切带,并得出以下结果:(1)在试样以恒定速率进行压缩变形时,试样在加速过程中发生两种类型的振动,即,(a)一种是由突然的外部压缩引起的,(b)第二种是由应变局部化/剪切带的形成引起的。在出现剪切带的情况下,例如,如果垂直速率等于大约10 cm / s,则样品内部发生的加速度约为数千加仑,这与地震期间的加速度相似。 (2)详细研究了时间增量,网格划分,初始围压,OCR和应力控制载荷对(b)中产生的加速度的影响。结果发现,在应力控制下,即使剪切带的形成与位移控制下的形成类似,感应加速度的表现也大不相同。

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