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Sand-steel interface behaviour under large-displacement and cyclic shear

机译:大型位移和循环剪切下的砂钢界面行为

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Large-displacement shear appears between pile shaft and its surrounding soil during the penetration process, and cyclic shear is the typical feature in subsequent service load condition. In this paper, a series of interface shear tests have been conducted to investigate the sand-steel interface behaviors under large-displacement and cyclic shear. Three types of particles (quartz sand, carbonate sand and steel bead) and two normal boundary conditions (constant normal load, CNL; constant normal stiffness, CNS) were used in these tests. To simulate the large displacement shear process for monotonic installed pile, the large-displacement shear is performed using monotonic shear method. It is found that under the large-displacement shear with CNL condition, the quartz sand and carbonate sand show different breakage degrees and modes. Obvious particle breakage changes both the particle gradation and sample densification, which are the main reasons for the increase of interface friction angle. While for the cyclic shear with CNS condition, the interface strength shows a quick degradation feature, which is mainly affected by the initial shape of particles. It is also found that the previous interface shear plays a key role in this kind of degradation. When the shear displacement is small, the degradation is promoted with only a small amount of sand breakage. But if the sand breakage is significant under the large-displacement shear, abundant broken fine particles fill into the void and make the sand sample much denser. So, the degradation trend of interface strength will be suppressed. It is suggested that the previous large-displacement shear process for displacement pile should be adequately considered in the design.
机译:在穿透过程中桩轴及其周围土壤之间出现大型位移剪切,循环剪切是随后的服务负载条件下的典型特征。在本文中,已经进行了一系列界面剪切测试,以研究大型位移和循环剪切下的砂钢界面行为。在这些试验中使用三种颗粒(石英砂,碳酸盐砂和钢珠)和两个正常边界条件(恒定正常载荷,CNL;恒定正常刚度,CNS)。为了模拟单调安装桩的大型位移剪切工艺,使用单调剪切方法进行大置换剪切。结果发现,在具有CNL条件的大移位剪切下,石英砂和碳酸盐砂显示出不同的破损程度和模式。显而易见的颗粒破裂改变颗粒灰度和样品致密化,这是界面摩擦角度增加的主要原因。虽然对于带有CNS条件的循环剪切,但界面强度表示快速降解特征,主要受颗粒的初始形状的影响。还发现前面的界面剪切在这种劣化中起着关键作用。当剪切位移小时,只有少量的砂破裂促进降解。但是,如果在大型位移剪切下的砂破裂是显着的,则损坏的细颗粒在空隙中填充,并使砂样更密集。因此,将抑制界面强度的退化趋势。建议在设计中应充分考虑前一种用于位移桩的大型大排量剪切工艺。

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