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3D Numerical Analysis of Synergetic Interaction between High-Rise Building Basement and CFG Piles Foundation

机译:高层建筑地下室与CFG桩基础之间协同互动的三维数值分析

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摘要

A strong bearing capacity and the satisfaction of strict settlement requirements are necessary for high-rise buildings. A single-raft foundation cannot meet certain settlement requirements, in which case CFG (cement/fly ash/gravel, an emerging and sustainable construction material) piles can be used in the foundation to set up a cushion between the top of the pile and the raft slab, where the piles act as settlement reducers. The rafts of disconnected piles (DPs) exhibit complex synergetic interactions involving the raft, cushion, pile, and soil under the load of the superstructure. Multiple piles in particular lead to an increase in the number of degrees of freedom of the problem, resulting in difficulty in solving it. However, when the number of piles is very large and the structure is complex—for example, many buildings are placed on the same raft with basement structures—even if the embedded pile element is used during numerical calculations, either the method remains prone to non-convergence or the time needed for numerical calculations is too long. It is, thus, difficult to satisfy the requirement of an efficient scheme of evaluation in practice. To solve this problem, a method that uses a simulation of the integral equivalent of the CFG pile reinforcement zone is proposed in this paper. In the CFG pile reinforcement zone, the effect of the pile is reflected in the enhancement of parameters of the soil in the strengthened zone, and the reinforcement zone (including the soil and the pile) is regarded as an anisotropic elastoplastic material. As the structure of the pile is no longer needed in the model, its elimination significantly reduces the complexity of the model and improves its calculation efficiency. An example of a numerical calculation is provided to verify the viability and accuracy of the integral equivalent simulation method in comparison with the embedded pile element simulation method. Finally, the proposed method is applied to the three-dimensional numerical analysis of a scheme for the treatment of foundations of high- and low-rise buildings with basements, and its effectiveness is further verified through comparison with theoretical results.
机译:高层建筑需要强劲的承载力和严格的定居要求的满意度。单筏基础不能满足某些沉降要求,在这种情况下,CFG(水泥/粉煤灰/砾石,新兴和可持续建筑材料)桩可用于在基础上建立桩顶部之间的垫子和筏板,桩作为结算减速器。断开的桩(DPS)的筏表现出涉及筏子,垫子,桩和土壤的复杂协同相互作用。多个桩特别导致问题自由度的增加,导致难以解决它。然而,当桩的数量非常大并且结构复杂时 - 例如,许多建筑物被放置在与地下室结构相同的筏上 - 即使在数值计算过程中使用嵌入式桩元件,该方法仍然容易出现非 - 数值计算所需的时间或时间太长。因此,难以满足实践中的有效评估方案的要求。为了解决这个问题,本文提出了一种使用模拟CFG绒壁加强区的模拟的方法。在CFG桩加固区中,桩的效果反映在增强区中土壤参数的增强中,加强区(包括土壤和桩)被认为是各向异性的弹性塑料材料。由于在模型中不再需要桩的结构,但其消除显着降低了模型的复杂性并提高了其计算效率。提供了数值计算的一个例子,以验证与嵌入桩元素仿真方法相比的积分等效仿真方法的可行性和准确性。最后,将所提出的方法应用于用于治疗高层建筑物基础的方案的三维数值分析,通过与理论结果进行比较进一步验证其有效性。

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