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Modelling Triaxial Tests on Fibre-Reinforced Sands with Different Fibre Orientations Using the Discrete Element Method

机译:采用离散元素法对不同纤维取向的纤维增强砂进行建模三轴试验

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摘要

Fibre-reinforced soil has been widely applied as a composite fill material in geotechnical engineering. In this study, triaxial tests of fibre-reinforced specimens with different fibre orientations were performed employing the discrete element method. The approach enables an investigation of some significant micromechanical properties, including the contact orientation distribution, coordination number, particle displacement field, and contact sliding fraction. From the discrete element method (DEM) perspective, fibre orientation affects the contact force distributions and the load-bearing mechanism for this mixture system. More horizontal fibre particles participate in supporting the strong force chains compared with the vertical and random fibres. Fibre orientation also affects the pattern of displacement fields, which shows that horizontal fibres can limit the formation of localised shear bands. Horizontal fibres also cause the largest increase in the normal contact force acting on the fibre-sand interface and the coordination number of the sand-fibre contact type, which leads to an increase of sliding friction between fibres and the sand matrix. The majority of horizontal fibres could also produce tension during triaxial compression, leading to a more effective reinforcement. The results from this study could contribute to improving our knowledge of mechanical behaviours of sand-fibre composites.
机译:纤维增强土壤已被广泛应用于岩土工程中的复合填充材料。在本研究中,采用离散元件进行不同的纤维取向的纤维增强试样的三轴试验。该方法使得能够研究一些显着的微机械性能,包括接触方向分布,配位数,颗粒位移场和接触滑动级分。从离散元素法(DEM)的角度来看,纤维取向影响该混合系统的接触力分布和承载机构。与垂直和随机纤维相比,更多卧式纤维颗粒参与强力链。纤维取向也会影响位移场的模式,这表明水平纤维可以限制局部剪切带的形成。水平纤维还导致作用在纤维砂界面上的正常接触力的最大增加和砂纤维接触型的配位数,这导致纤维和砂基质之间的滑动摩擦增加。大多数水平纤维也可能在三轴压缩过程中产生张力,导致更有效的加固。本研究的结果可能有助于提高我们对砂纤维复合材料的力学行为的知识。

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