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Assessing axial load transfer mechanism of open-ended tubular piles penetrating in weak rocks using three-dimensional discrete element method

机译:使用三维离散元件法评估开放式管状桩的轴向荷载传递机理穿透弱岩体渗透

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In order to obtain a better understanding of the load transfer mechanism of open-ended tubular piles driven into weak rocks, numerical analysis is conducted to study the internal and external shaft frictions, base resistance and the stress distribution pattern in the surrounding rock mass. Meanwhile, since pile shoes are often applied when driving to the rock layer, a common inner pile shoe attached to the open-ended tubular pile was analysis and compared with the pile without a shoe. In this study, the discrete element method (DEM), which can mimic rock grains and the interaction between grains, is adopted due to its ability to simulate large deformation problems such as pile penetration process. The flat-joint model that allows partial damage at the contact interface was employed to replicate the discrete nature of the rock mass. The rock behaviour was calibrated against triaxial test results for a pyroclastic weak rock, and then the calibrated rock was employed for the simulation of pile penetration. A 30 degrees segment of the true-scale model was simulated using the DEM with a height of 3 m and a radius of 1.5 m, which was composed of about 557,000 particles. Initial stresses were applied at the boundary of the testing chamber, while the side of the chamber was discretised into several sections with increasing horizontal stresses with depth to establish the at rest condition. Numerical results for penetration of an open-ended tubular pile show that the external shaft resistance of the pile with inner pile shoe increased approximately linearly as the pile penetrated deeper. In addition, the internal shaft friction was notably less than the external shaft friction for both piles with and without a shoe. Plugging was observed for both piles with and without a driving shoe. The inner pile shoe allowed the pile partial plugging to occur at shallower penetration depth. This study sheds a light on the load transfer mechanism of the open-ended tubular piles and the effect of the shoe on the axial capacity of the piles in weak rocks.
机译:为了更好地理解从被驱动到弱岩石被驱动的开口管状桩的负载转移机构,进行了数值分析,以研究周围岩体中的内部和外部轴摩擦,基极阻和应力分布图案。同时,由于在驱动到岩层时通常施加桩鞋,附着在开放式管状桩上的普通内桩鞋是分析,并与堆没有鞋子相比。在该研究中,采用了可以模拟岩谷物和谷物之间的相互作用的离散元素方法(DEM),这是由于其模拟大变形问题,例如桩渗透过程。允许接触界面损坏的平面联合模型用于复制岩体的离散性质。岩石行为针对三轴试验结果进行校准,对吡焦弱岩石,然后采用校准的岩石进行桩渗透的模拟。使用高度为3米的DEM和1.5米半径的DEM模拟了30度的真正模型。由约557,000颗粒组成。在测试室的边界处施加初始应力,而腔室的侧面被离散地分离成几个部分,随着深度的深度而来增加静止状态。开放式管状桩渗透的数值结果表明,随着桩渗透深,桩与内部桩鞋的外轴电阻大致线性增加。此外,内部轴摩擦显着小于两个带有鞋子的桩的外轴摩擦。对于两层桩而没有驱动鞋,观察到堵塞。内部桩鞋允许桩部分堵塞发生在较浅的渗透深度。本研究揭示了开放式管状桩的负载转移机构的光,以及鞋对弱岩中桩的轴向容量的影响。

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