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Centrifuge testing of liquefaction mitigation effectiveness on sand foundations treated with nanoparticles

机译:用纳米粒子处理的砂基础对液化缓解效能的离心测试

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In the last decade there has been a significant research focus on developing non-disruptive methods to mitigate liquefaction in soil foundations beneath infrastructure. One such method involving the use of nanoparticles has been recently proposed to reduce liquefaction potential without changing the soil skeleton. To explore its effectiveness and mechanisms of anti-liquefaction, an advanced centrifuge test is presented. The test involves a sand model treated with laponite (a clay nanoparticle) which is measured for dynamic responses at appropriate spatial and temporal scales. Following treatment, various pore pressure and acceleration response trends are observed and analyzed. Marked reductions in excess pore pressure, settlement and lateral displacement are evident from the treatment. In combination with laboratory tests, amplitude reduction and trend changes are found to be closely related to the properties of laponite dispersion. Laponite dispersion appears to induce rheological changes in the pore fluid, thus reducing the permeability coefficient and strengthening the restraint of soil particles. This is especially evident in terms of delayed build-up of excess pore pressure. Overall, pore fluid modification using this nanoparticle method shows excellent performance and has potential for future applications in non-disruptive liquefaction mitigation.
机译:在过去的十年中,一直致力于开发非中断方法,减轻基础设施下面的土壤基础的液化。最近已经提出了涉及使用纳米颗粒的这种方法,以降低液化电位而不改变土壤骨架。为了探讨其抗液化的有效性和机制,提出了先进的离心机测试。该试验涉及用丙尼矿(粘土纳米粒子)处理的砂模型,其在适当的空间和时间尺度下测量动态响应。处理后,观察和分析各种孔隙压力和加速度响应趋势。从治疗中显而易见,显着降低过量的孔隙压力,沉降和横向位移。结合实验室测试,发现幅度降低和趋势变化与兰尼岩分散性的性质密切相关。 Laponite分散似乎诱导孔隙流体的流变变化,从而降低了渗透系数并强化了土壤颗粒的约束。在延迟孔隙压力的延迟积聚方面尤其明显。总的来说,使用该纳米粒子方法的孔隙流体改性显示出优异的性能,并且具有未来液化液化缓解中未来应用的潜力。

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