各向异性岩体剪切破坏的各向异性弹塑性强不连续模型

IF 5.3 1区 工程技术 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
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引用次数: 0

摘要

本文提出了一种新的各向异性弹塑性强不连续有限元(SD-FEM),用于分析各向异性岩体的完整渐进剪切破坏过程。结合微结构张量方法的弹塑性公式描述了滑移前的变形特性。通过各向异性不连续分岔分析,判断滑移线的起始条件和传播方向。此外,还利用在不连续面上推导出的各向异性应力-位移关系来描述与滑移相关的失效后响应。两个数值示例,即各向异性岩块的单轴压缩试验和各向异性岩坡的加载问题,用于证明各向异性弹塑性 SD-FEM 模型的显著能力。结果表明,该模型不仅能反映岩体的各向异性力学特征,还能精确模拟从均匀变形到滑动破坏的完整渐进破坏过程。值得注意的是,滑移量(即不连续位移)随垂直荷载呈线性增长,突出了岩体的弹脆变形特征。此外,即使在软化阶段,全局刚度矩阵的特征值仍然为正,这使得数值计算能够继续进行,并确保了数值解与网格无关,这表明各向异性 SD-FEM 能够正则化应变软化发生时边界值问题的拟合不良性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An anisotropic elastoplastic strong discontinuity model for shear failure in anisotropic rock masses
In this paper, we propose a noval anisotropic elastoplastic strong discontinuity-FEM (SD-FEM) for analyzing the complete progressive shear failure process in anisotropic rock masses. The deformation property preceding slip is described with an elastoplastic formulation incorporating the microstructure tensor approach. Anisotropic discontinuous bifurcation analysis is conducted to judge the initiation conditions and propagation direction of slip lines. Furthermore, a derived anisotropic stress-displacement relation on the discontinuity is utilized to describe the post-failure response asscociated with slip. Two numerical examples, namely the uniaxial compression test of anisotropic rock masses and the loading problem of the anisotropic rock slope, are used to demonstrate the remarkable capabilities of the anisotropic elastoplastic SD-FEM model. It is illustrated that this model can not only reflect the anisotropic mechanical characteristics of rock masses but also accurately simulate the complete progressive failure process, spanning from uniform deformation to sliding failure. Notably, it is observed that the magnitude of slip (i.e., discontinuous displacement) exhibits a linear increase with the vertical load, highlighting the elastic-brittle deformation characteristics of rock masses. Moreover, the eigenvalues of the global stiffness matrix remain positive even in the softening stage, which enables the numerical calculation to proceed and ensures the mesh-independent numerical solutions, indicating that the anisotropic SD-FEM can regularize the ill-posedness of the boundary value problem when strain softening occurs.
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来源期刊
Computers and Geotechnics
Computers and Geotechnics 地学-地球科学综合
CiteScore
9.10
自引率
15.10%
发文量
438
审稿时长
45 days
期刊介绍: The use of computers is firmly established in geotechnical engineering and continues to grow rapidly in both engineering practice and academe. The development of advanced numerical techniques and constitutive modeling, in conjunction with rapid developments in computer hardware, enables problems to be tackled that were unthinkable even a few years ago. Computers and Geotechnics provides an up-to-date reference for engineers and researchers engaged in computer aided analysis and research in geotechnical engineering. The journal is intended for an expeditious dissemination of advanced computer applications across a broad range of geotechnical topics. Contributions on advances in numerical algorithms, computer implementation of new constitutive models and probabilistic methods are especially encouraged.
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