Multiscale investigation of shear mechanical behaviour in cemented soil–rock mixtures (CSRMs) regulated by matrix–block welding states

IF 6.2 1区 工程技术 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Computers and Geotechnics Pub Date : 2025-04-11 DOI:10.1016/j.compgeo.2025.107254
Minghui Ren , Hai Pu , Guangsi Zhao , Ruilin Li , Lulu Liu , Runhua Zhang
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Abstract

Soil–rock mixtures (SRMs) are characterized by heterogeneous structural features that lead to multiscale mechanical evolution under varying cementation conditions. However, the shear failure mechanisms of cemented SRMs (CSRMs) remain insufficiently explored in existing studies. In this work, a heterogeneous three-dimensional (3D) discrete element model (DEM) was developed for CSRMs, with parameters meticulously calibrated to examine the role of matrix–block interfaces under different volumetric block proportions (VBPs). At the macroscopic scale, significant influences of the interface state on the peak strength of CSRMs were observed, whereas the residual strength was found to be largely insensitive to the interface cementation properties. Pronounced dilatancy behaviour was identified in the postpeak and residual phases, with a positive correlation with both interface cementation and VBP. Quantitative particle-scale analyses revealed substantial heterogeneity and anisotropy in the contact force network of CSRMs across different components. A highly welded interface was shown to reduce the number of interface cracks at the peak strength state while increasing the proportion of tensile cracks within the interface zone. Furthermore, the welding degree of the interface was found to govern the formation and morphology of shear cracking surfaces at the peak strength state. Nevertheless, a reconstruction method for the shear slip surface was proposed to demonstrate that, at the same VBP, the primary roughness of the slip surfaces remained consistent and was independent of the interface properties. Based on the extended simulations, the peak strength of the weakly welded CSRMs progressively decreased with increasing VBP, whereas further exploration of the enhanced residual strength is needed.
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受基体-块体焊接状态调节的胶结土-岩石混合物(CSRM)剪切力学行为的多尺度研究
土石混合体具有非均质结构特征,导致其在不同胶结条件下的多尺度力学演化。然而,现有研究对胶结SRMs (csrm)的剪切破坏机制探索不足。在这项工作中,为csrm开发了一个异构三维(3D)离散单元模型(DEM),并对参数进行了精心校准,以检查不同体积块比例(VBPs)下矩阵块界面的作用。在宏观尺度上,界面状态对csrm峰值强度有显著影响,而残余强度对界面胶结性能基本不敏感。在峰后和残余相中发现了明显的膨胀行为,与界面胶结和VBP呈正相关。定量的粒子尺度分析揭示了csrm在不同组分之间的接触力网络存在实质性的异质性和各向异性。高度焊接的界面减少了峰值强度状态下的界面裂纹数量,同时增加了界面区域内拉伸裂纹的比例。此外,在峰值强度状态下,界面的焊接程度决定了剪切裂纹表面的形成和形貌。然而,提出了一种剪切滑移面重建方法,证明在相同的VBP下,滑移面的原始粗糙度保持一致,并且与界面性质无关。扩展模拟结果表明,随着VBP的增大,弱焊接csrm的峰值强度逐渐降低,残余强度的增强还有待进一步研究。
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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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