Pore structure evolution and damage creep model of shale subjected to freeze-thaw treatment

被引:17
作者
Xuan, Zhang-qing [1 ]
Sun, Zhi-min [2 ]
Wang, Jun-guang [1 ]
Sun, Wei-ji [1 ]
Liang, Bing [1 ]
Ma, Zheng [1 ]
机构
[1] Liaoning Tech Univ, Fuxin, Peoples R China
[2] 101 Team Co Ltd, Liaoning Nonferrous Geol, Hangzhou, Peoples R China
来源
JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T | 2022年 / 19卷
基金
中国国家自然科学基金;
关键词
Shale; Freeze-thaw cycles; Freeze-thaw temperature difference; Nuclear magnetic resonance; Damage creep model; SANDSTONE; STRENGTH; ROCKS;
D O I
10.1016/j.jmrt.2022.05.070
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
To solve the long-term instability problem of engineering project in the seasonal frozen region, we carried out the freeze-thaw (F-T) cycle experiments of shale under different F-T temperatures and numbers of cycles, nuclear magnetic resonance (NMR), and triaxial compression creep experiments to study the mesoscopic damage and creep evolution characteristics of rock. The experimental results show that with the increasing number of F-T cycles and decreasing freezing temperature, the creep deformation and steady-state creep rate of shale increased gradually, while the long-term strength decreased greatly. It was found that with increasing axial stress levels, the influence of F-T temperature difference on axial creep deformation and the creep rate of shale was relatively small, while the influence of the number of cycles was relatively notable. Based on the experimental results, the creep damage variables of F-T shale were proposed considering both freeze-thaw damage and creep damage. And then a nonlinear fractional damage creep model considering the number of F-T cycles and temperature difference was established. The reliability and applicability of the model are verified through the experimental results, which can serve as a theoretical basis for the long-term strength determination, engineering stability analysis, and construction in frozen soil areas.(c) 2022 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
引用
收藏
页码:821 / 836
页数:16
相关论文
共 35 条
[1]   Mechanical Characterization of Heterogeneous Polycrystalline Rocks Using Nanoindentation Method in Combination with Generalized Means Method [J].
Ayatollahi, M. R. ;
Najafabadi, M. Zare ;
Koloor, S. S. R. ;
Petru, Michal .
JOURNAL OF MECHANICS, 2020, 36 (06) :813-823
[2]  
Chen GQ, 2017, ROCK SOIL MECH, V38, P203, DOI 10.16285/j.rsm.2017.S1.024
[3]  
[陈国庆 Chen Guoqing], 2021, [岩石力学与工程学报, Chinese Journal of Rock Mechanics and Engineering], V40, P1962
[4]  
[陈国庆 Chen Guoqing], 2020, [工程地质学报, Journal of Engineering Geology], V28, P19
[5]  
[陈陆望 Chen Luwang], 2018, [固体力学学报, Chinese Journal of Solid Mechanics], V39, P642
[6]  
Heymans Nicole, 2007, EUROCON 2007. International Conference on "Computer as a Tool", P258, DOI 10.1109/EURCON.2007.4400300
[7]   INFLUENCES OF MICROSCOPIC FACTORS ON MACROSCOPIC STRENGTH AND STIFFNESS OF INTER-LAYERED ROCKS-REVEALED BY A BONDED PARTICLE MODEL [J].
Jeng, F. -S. ;
Wang, T. -T. ;
Li, H. H. ;
Huang, T. -H. .
JOURNAL OF MECHANICS, 2008, 24 (04) :379-389
[8]  
[贾海梁 Jia Hailiang], 2017, [岩石力学与工程学报, Chinese Journal of Rock Mechanics and Engineering], V36, P335
[9]  
Kachanov M., 1992, Appl. Mech. Rev., V45, P305
[10]   Anisotropic creep model for soft soils [J].
Leoni, M. ;
Karstunen, M. ;
Vermeer, P. A. .
GEOTECHNIQUE, 2008, 58 (03) :215-226