Theoretical solution for drained cylindrical cavity expansion in sands incorporating fabric anisotropy using the SANISAND-F model

IF 5.3 1区 工程技术 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Cheng Chen , Lei Yan , Xianwei Zhang , Yong Wang , Zhonghua Sun , Mengbing Xu
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Abstract

This paper presents a rigorous, semi-analytical solution for the drained cylindrical cavity expansion in transversely isotropic sand. The constitutive model used for the sand is the SANISAND-F model, which is developed within the anisotropic critical state theory framework that can account for the essential fabric anisotropy of soils. By introducing an auxiliary variable, the governing equations of the cylindrical expansion problem are transformed into a system of ten first-order ordinary differential equations. Three of these correspond to the stress components, three are associated with the kinematic hardening tensor, three describe the fabric tensor, and the last one represents the specific volume. The solution is validated through comparison with finite element analysis, using Toyoura sand as the reference material. Parametric analyses and discussion on the impact of initial void ratio, initial mean stress level, at-rest earth pressure coefficient and initial fabric anisotropy intensity are presented. The results demonstrate that the fabric anisotropy of sand significantly influences the distribution of stress components and void ratio around the cavity. When fabric anisotropy is considered, the solution predicts lower values of radial, circumferential and vertical stresses near the cavity wall compared to those obtained without considering fabric anisotropy. The proposed solution is expected to enhance the accuracy of cavity expansion predictions in sand, which will have significant practical applications, including interpreting pressuremeter tests, predicting effects of driven pile installation, and improving the understanding of sand mechanics under complex loading scenarios.
考虑织物各向异性的砂土排水柱腔扩张的SANISAND-F模型理论解
本文给出了横向各向同性砂土中排水圆柱腔膨胀的严格半解析解。砂土的本构模型是SANISAND-F模型,该模型是在各向异性临界状态理论框架下建立的,可以解释土壤的基本结构各向异性。通过引入辅助变量,将圆柱膨胀问题的控制方程转化为十个一阶常微分方程组。其中三个与应力分量相对应,三个与运动硬化张量相关联,三个描述织物张量,最后一个代表比体积。以Toyoura砂为参比材料,通过与有限元分析的对比验证了该方案的有效性。对初始孔隙比、初始平均应力水平、静息土压力系数和初始织物各向异性强度的影响进行了参数分析和讨论。结果表明,砂土的各向异性对空腔周围应力分量的分布和空隙率有显著影响。当考虑织物各向异性时,与不考虑织物各向异性的结果相比,该解预测的腔壁附近径向、周向和垂直应力值更低。提出的解决方案有望提高砂土中空腔扩张预测的准确性,这将具有重要的实际应用,包括解释压力计测试,预测打入桩安装的影响,以及提高对复杂荷载情景下砂土力学的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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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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