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A three-dimensional dual-scale coupled approach and its application in geotechnics

机译:一种三维双级耦合方法及其在岩土学学中的应用

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摘要

To study the microscopic and macroscopic behaviour of geotechnical engineering materials, attention is increasingly being paid to the dual-scale coupled computation of continuum and discrete models. However, two-dimensional dual-scale coupling cannot reveal the actual behaviour of materials. Therefore, a three-dimensional dual-scale coupled approach to accomplish the information transmission between discrete-element model and finite-difference model was deduced, and a corresponding coupled program was developed. The point of application of the resultant force on the interface in the discrete-element model was sought by introducing the principle of least squares, and the element nodal forces at the interface in the continuum model were obtained based on the formulation of load transfer from the literature. The velocities acting on the interface in the discrete-element model were calculated by bilinear interpolation according to the nodal velocities of the interface in the continuum model, which achieved the velocity transmission from the continuous zone to the discrete-element zone. The coupling was accomplished through the velocity and force transmissions at the interface between discrete-element model and finite-difference model. Finally, the algorithm and program were validated through an example of dynamic compaction.
机译:为研究岩土工程材料的微观和宏观行为,越来越多地支付对连续统计和离散模型的双级耦合计算。然而,二维双级耦合不能揭示材料的实际行为。因此,推导了三维双级耦合方法来实现离散元模型和有限差模型之间的信息传输,并且开发了相应的耦合程序。通过引入最小二乘的原理寻求在离散元件模型中的界面上的所得力的施加点,并且基于从载荷转移的配方获得连续模型中的界面处的元素节点。文学。根据连续式模型中的界面的节点速度,通过双线性插值来计算作用在离散元件模型中的界面的速度,从而实现了从连续区域到分立元区的速度传递。通过在离散元模型和有限差模型之间的界面处的速度和力传输来完成耦合。最后,通过动态压实的示例验证了算法和程序。

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