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Microstructural study of deformation zones during cone penetration in silt at variable penetration rates

机译:变渗透速率下粉砂入渗过程中变形区的微观结构研究

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During conventional cone penetration testing in silt, the soil will normally be partially drained. If the penetration rate varies, time for drainage is altered and therefore the measured cone resistance and pore pressure will change. This paper studies the change in soil microstructure around the probe during cone penetration carried out at different penetration rates to investigate the failure mechanism and the processes controlling drainage in silt. Backscattered electron images of polished thin sections prepared from frozen samples at the end of penetration were used. Making use of advanced image-processing techniques, the statistical distribution of particle orientations and the local porosity were investigated for zones around the cone tip and shaft. The spatial distribution of the measured microscale parameters in the region near the probe indicates that the soil deformation during a piezometric cone penetration test (CPTU) in silt leads to the formation of both contractive and dilative zones. The macro response of the material, presented by the pore pressure and cone penetration resistance measured during the test, results from the competition between these zones during penetration, which is shown to be dependent on the penetration rate.
机译:在常规的淤泥锥形渗透试验中,土壤通常会部分排干。如果渗透率变化,则排水时间会改变,因此测得的锥阻力和孔隙压力也会改变。本文研究了不同渗透速率下锥入过程中探针周围土壤微观结构的变化,以探讨其破坏机理和控制粉砂排水的过程。使用在穿透结束时由冷冻样品制备的抛光薄片的反向散射电子图像。利用先进的图像处理技术,研究了锥头和杆身周围区域的颗粒取向和局部孔隙率的统计分布。探针附近区域中测得的微尺度参数的空间分布表明,在粉砂的测压圆锥渗透试验(CPTU)过程中,土壤变形会导致收缩带和膨胀带的形成。材料的宏观响应,是由在测试过程中测得的孔隙压力和锥孔穿透阻力所表示的,是由这些区域在渗透过程中的竞争所引起的,这取决于渗透率。

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