Investigations on mechanical responses of frozen soil–rock mixture under cyclic loading: experiments and binary-medium-based multiscale constitutive model

IF 5.6 1区 工程技术 Q1 ENGINEERING, GEOLOGICAL
Dan Wang, Enlong Liu, Qihao Yu, Chengsong Yang, Yunming Yang, Bingtang Song, Jian Kang, Ling Chen, Haotian Wei, Qiong Li
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Abstract

In cold regions, the frozen soil–rock mixture (FSRM) is subjected to cyclic loading coupled with freeze–thaw cycles due to seismic loading and ambient temperature changes. In this study, in order to investigate the dynamic mechanical response of FSRM, a series of cyclic cryo-triaxial tests were performed at a temperature of −10 °C on FRSM with different coarse-grained contents under different loading conditions after freeze–thaw cycles. The experimental results show that the coarse-grained contents and freeze–thaw cycles have a significant influence on the deformation properties of FSRM under cyclic loading. Correspondingly, a novel binary-medium-based multiscale constitutive model is firstly proposed to describe the dynamic elastoplastic deformation of FSRM based on the coupling theoretical framework of breakage mechanics for geomaterials and homogenization theory. Considering the multiscale heterogeneities, ice-cementation differences, and the breakage process of FSRM under external loading, the relationship between the microscale compositions, the mesoscale deformation mechanism (including cementation breakage and frictional sliding), and the macroscopic mechanical response of the frozen soil is first established by two steps of homogenization on the proposed model. Meanwhile, a mixed hardening rule that combines the isotropic hardening rule and kinematic hardening is employed to properly evaluate the cyclic plastic behavior of FSRM. Finally, comparisons between the predicted results and experimental results show that the proposed multiscale model can simultaneously capture the main feature of stress–strain (nonlinearity, hysteresis, and plastic strain accumulation) and volumetric strain (contraction and dilatancy) of the studied material under cyclic loading.

Abstract Image

循环荷载作用下冻土-岩石混合体力学响应研究:试验与二元介质多尺度本构模型
在寒冷地区,由于地震荷载和环境温度的变化,冻土石混合体(FSRM)受到冻融循环的双重作用。为了研究FSRM的动态力学响应,在冻融循环后的不同加载条件下,对不同粗粒含量的FSRM在−10℃的温度下进行了一系列循环冷冻-三轴试验。试验结果表明,粗粒含量和冻融循环次数对FSRM在循环荷载作用下的变形特性有显著影响。相应地,基于岩土材料断裂力学与均质化理论的耦合理论框架,首次提出了一种新的基于二元介质的多尺度本构模型来描述FSRM的动态弹塑性变形。考虑到外荷载作用下FSRM的多尺度非均质性、冰-胶结差异和破坏过程,首先在该模型上通过两步均质化建立了冻土微观组成、中尺度变形机制(包括胶结破坏和摩擦滑动)和宏观力学响应之间的关系。同时,采用各向同性硬化和运动硬化相结合的混合硬化准则来评价FSRM的循环塑性行为。最后,将预测结果与试验结果进行对比,结果表明所建立的多尺度模型能够同时反映材料在循环荷载作用下的应力-应变(非线性、滞后和塑性应变积累)和体积应变(收缩和剪胀)的主要特征。
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来源期刊
Acta Geotechnica
Acta Geotechnica ENGINEERING, GEOLOGICAL-
CiteScore
9.90
自引率
17.50%
发文量
297
审稿时长
4 months
期刊介绍: Acta Geotechnica is an international journal devoted to the publication and dissemination of basic and applied research in geoengineering – an interdisciplinary field dealing with geomaterials such as soils and rocks. Coverage emphasizes the interplay between geomechanical models and their engineering applications. The journal presents original research papers on fundamental concepts in geomechanics and their novel applications in geoengineering based on experimental, analytical and/or numerical approaches. The main purpose of the journal is to foster understanding of the fundamental mechanisms behind the phenomena and processes in geomaterials, from kilometer-scale problems as they occur in geoscience, and down to the nano-scale, with their potential impact on geoengineering. The journal strives to report and archive progress in the field in a timely manner, presenting research papers, review articles, short notes and letters to the editors.
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