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Effect of rubber content on the unstable behaviour of sand-rubber mixtures under static loading: a micro-mechanical study

机译:橡胶含量对静态载荷下砂胶混合物不稳定行为的影响:微观力学研究

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While it has been acknowledged from cyclic laboratory tests that the inclusion of rubber particles increases liquefaction resistance, little attention has been paid to the influence of rubber content on stress paths that could lead to static liquefaction or collapse. Although laboratory experiments of sand-rubber mixtures under undrained loading have offered macro-scale insights into their stress-strain response, additional understanding at a particle scale under such conditions still remains unexplored. This study presents a series of conventional undrained and constant shear drained monotonic triaxial tests consisting of mixtures of sand (stiff) and rubber (soft) particles simulated by the discrete-element method. Sets of loose mixtures were prepared with rubber contents ranging from 0 to 30% by weight, having the same void ratio. The instability state was found to be dependent on rubber content; however, this was not the case for the angle of the instability line. Besides, instability states reached at higher strengths did not indicate increase in resistance against liquefaction. As rubber content increased, less susceptibility to liquefaction was found, with the sample having 30% of rubber content only experiencing limited reduction of strength. The micro-scale information was obtained for all tests and particular attention was given to the micro-mechanical response at the onset of instability and at liquefaction or quasi-steady state. The trends of micro-mechanical parameters with rubber contents changed depending on test stage, which was related to the different macro-scale response at instability state and at liquefaction or quasi-steady state.
机译:尽管从循环实验室测试中已经确认,橡胶颗粒的加入会增强抗液化性,但很少注意橡胶含量对应力路径的影响,应力路径可能导致静态液化或塌陷。尽管在不排水的情况下进行砂橡胶混合物的实验室实验已经提供了有关其应力应变响应的宏观见解,但在这种情况下仍无法在颗粒级获得更多的了解。这项研究提出了一系列常规的不排水和恒剪力排水的单调三轴试验,由离散元素法模拟的沙子(硬)和橡胶(软)颗粒的混合物组成。制备一组疏松混合物,其橡胶含量为0至30重量%,具有相同的空隙率。发现不稳定性状态取决于橡胶含量。但是,不稳定性线的角度并非如此。此外,在较高强度下达到的不稳定性状态并不表示抗液化性增加。随着橡胶含量的增加,发现对液化的敏感性降低,橡胶含量为30%的样品强度仅受到有限的降低。在所有测试中均获得了微观信息,并特别关注了不稳定状态,液化或准稳态下的微观力学响应。橡胶含量的微机械参数的变化趋势随测试阶段的变化而变化,这与不稳定状态和液化或准稳态下不同的宏观尺度响应有关。

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