ISSN 1000-3665 CN 11-2202/P

    饱和黏性土地基无砂增压式真空预压模型试验

    Model test on saturated soft ground improved by air-booster vacuum preloading without drained sandy cushion on the surface

    • 摘要: 无砂增压式真空预压是处理饱和黏性土地基的一种新方法。为充分认识饱和黏性土地基无砂增压式真空预压排水固结过程中的力学行为,依托四川省天眉乐高速公路填方路基下软弱地基处理工程,选取典型的增压式真空预压单元,以几何相似比1∶6进行了室内物理模型试验,设置了传统真空预压(不增压)、间歇式增压、恒定增压共3种模式,获得了地基土体力学行为的变化特征。结果表明:三种模式下地基中超静孔压、地表沉降、地基排水量均呈现前期快速下降、后期缓慢消散的特点,间歇式增压模式的地基排水固结效果最好;对于间歇式增压,增压瞬间土体内超静孔压出现幅度约10%的增大波动,一个增压循环结束后超静孔压消散约3.1%~4.2%;相较于间歇式增压与不增压,恒定增压模式下超静孔压最终分别约增大25%、减小9%,地基表面沉降相应减小12%、增加25%,地基排水量相应减小15%、增加9%;三种模式下地基含水量明显降低,土体抗剪强度参数显著提高。基于模型试验结果,改进了此类问题的数值建模方法。模型试验、数值模拟与理论分析得到的地表沉降结果总体一致,计算得到的前期地基固结效果相对较好。

       

      Abstract: The air-booster vacuum preloading without drained sandy cushion is a new method to deal with saturated soft cohesive soil foundations. To fully understand mechanical behavior of the saturated soft ground during its consolidation and drainage improved with this measure, a series of laboratory physical simulation tests have been conducted for a typical pressurized vacuum preloading unit with a geometric similarity ratio of about 1∶6 based on soft ground improvement in an expressway embankment project in Sichuan province. The length, width and height of the modeled ground in the tests are uniformly 1 m. Three pressurization modes are involved in the tests including traditional vacuum preloading (no pressurization), interval pressurization, and constant pressurization, and the variation characteristics of mechanical behavior of the improved ground have been obtained. The test results show that the excessive pore pressure, ground settlement and water discharge in the three modes show the same characteristics of rapid varying in the early stage (the first 40% of total duration of drainage consolidation) and slow changing in the remaining stage. The interval pressurization mode has the best effect on the drainage consolidation. For the interval pressurization, the excessive pore pressure fluctuates growingly by about 10% at the pressurizing moment, and dissipates about 3.1%~4.2% after a pressurization cycle. Compared with interval pressurization and no pressurization, in the constant pressurization mode the excessive pore pressure increases by about 25% and decreases by 9%, the ground settlement reduces by 12% and grows by 25%, and the water discharge diminishes by 15% and rises by 9%, respectively. Water content and parameters of shear strength of the improved ground are significantly decreasing and increasing under the three modes, respectively. Based on the experimental results, an improved numerical modeling method of analyzing such problems is provided. The results of ground settlement obtained using the model test, numerical simulation and theoretical analysis are in good agreement, while the computed early consolidation effect of the ground is slightly better.

       

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