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Fluid–Solid Coupling Based on a Refined Fractured Rock Model and Stochastic Parameters: A Case Study of the Anti-Sliding Stability Analysis of the Xiangjiaba Project

机译:基于精细裂缝岩体模型和随机参数的流体固相耦合:湘济坝项目防滑稳定性分析的案例研究

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摘要

The anti-sliding stability analysis of a high concrete gravity dam under a complex geological condition is a difficult problem to solve. To depict the discontinuous characteristics of a dam foundation fractured rock mass in a numerical model, a multi-scale coupling 3D geoengineering modelling method is presented. Facial-based geometric models of rock strata and fractures are established with the NURBS-based B-Rep and then coupled together after being converted to the voxel-based model based on TEN. Using the partial differential equation method, the interaction of fluid and solid is realized. Thus, the plastic zone and pore water pressure distribution are obtained. The results show that the plastic zone is formed in some fractures, and the dam stability against sliding of this cross section is diminished. Because of the existence of interlaced fractures, the potential sliding surface may be produced once the fractures are connected. Considering the complex geological structures in a dam foundation, the spatial variability and uncertainty of the rock mass parameters cannot be ignored. The random field of the elastic modulus is generated and applied to the fluid–solid interaction. The range of the plastic zone is different when the elastic modulus is assigned a logarithmic random distribution. The proposed methods in this paper improve the stability analysis by enhancing the finite element numerical modelling by considering discontinuities of the rock mass and simulating the random distribution of the elastic modulus, which has significant application value for other projects.
机译:复杂地质条件下高混凝土重力坝的防滑稳定性分析是解决的难题。为了描绘在数值模型中坝基裂缝岩体骨质岩体的不连续特性,提出了一种多尺度耦合3D地理工程建模方法。用基于NURBS的B-REP建立了基于面部的岩石地层和裂缝的几何模型,然后在基于十个转换为基于体素的模型之后耦合在一起。使用局部微分方程方法,实现了流体和固体的相互作用。因此,获得塑料区和孔隙水压分布。结果表明,塑料区形成在一些裂缝中,并且抵抗该横截面滑动的坝稳定性降低。由于存在隔行裂缝的存在,一旦裂缝连接,可以制造电位滑动表面。考虑到大坝基础中复杂的地质结构,岩石质量参数的空间变异性和不确定度不能忽视。产生弹性模量的随机场并施加到流体固体相互作用上。当为弹性模量分配对数随机分布时,塑料区的范围是不同的。本文所提出的方法通过考虑岩体的不连续性并模拟弹性模量的随机分布来提高有限元数值模型来改善稳定性分析,这对其他项目具有显着的应用价值。

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