Advance Search
LIU Guangjian,ZHOU Hao,MU Zonglong,et al. Study on macro-and mesoscopic damage characteristics of fractured sandstoneunder cyclic loading and unloading with variable upper limit[J]. Coal Science and Technology,2025,53(5):77−89. DOI: 10.12438/cst.2024-0160
Citation: LIU Guangjian,ZHOU Hao,MU Zonglong,et al. Study on macro-and mesoscopic damage characteristics of fractured sandstoneunder cyclic loading and unloading with variable upper limit[J]. Coal Science and Technology,2025,53(5):77−89. DOI: 10.12438/cst.2024-0160

Study on macro-and mesoscopic damage characteristics of fractured sandstoneunder cyclic loading and unloading with variable upper limit

More Information
  • Received Date: January 27, 2024
  • Available Online: May 12, 2025
  • Abstract: In order to study the macro and micro damage characteristics of fractured rock mass under cyclic load, cyclic loading and unloading tests with variable upper limit were carried out to analyze the mechanical properties and macro failure characteristics of the samples. Based on the results of XRD analysis, a UDEC numerical model of fractured sandstone is constructed to analyze the microscopic damage law of the model and reveal its mechanism. The results show that: loading and unloading can strengthen the deformation resistance of the samples with small cracks, and on the contrary increase the failure velocity of the samples with large cracks; With the increase of the prefabricated fracture length, the macroscopic failure characteristics of the sample changed from tensile shear failure to shear failure, and the irreversibility of the damage gradually increased. The damage evolution process of the sample under loading and unloading can be divided into four stages: “elasticity-strengthening-fatigue-failure”. No damage occurs in the elastic stage model, while an effective resistance structure is formed in the strengthening stage model. Cumulative damage increases significantly in the fatigue stage, and tensile cracks expand during unloading. During the loading stage, cracks expand and connect with each other, the contact point pole of the block between adjacent shear microcracks is destroyed, and the connection between the blocks fails. During the unloading process, the stress drop model is relaxed, and the failed connection between the blocks opens up at this time, leading to the initiation of tension cracks between the shear microcracks, and accelerating the instability and failure of the model. The research results reveal the macro and micro damage characteristics of fractured sandstone under variable upper limit cyclic loading and unloading, and provide a reference for scientific evaluation of engineering stability.

  • [1]
    张吟钗. 水库地震和水−岩作用对库岸边坡动力响应特征的影响研究[D]. 宜昌:三峡大学,2019.

    ZHANG Yinchai. Study on dynamic response characteristics of reservoir bank slope under the influence of reservoir earthquake and water-rock interaction[D]. Yichang:China Three Gorges University,2019.
    [2]
    张伟,周国庆,张海波,等. 倾角对裂隙岩体力学特性影响试验模拟研究[J]. 中国矿业大学学报,2009,38(1):30−33. doi: 10.3321/j.issn:1000-1964.2009.01.007

    ZHANG Wei,ZHOU Guoqing,ZHANG Haibo,et al. Experimental research on the influence of obliquity on the mechanical characteristics of a fractured rock mass[J]. Journal of China University of Mining & Technology,2009,38(1):30−33. doi: 10.3321/j.issn:1000-1964.2009.01.007
    [3]
    LEE H,JEON S. An experimental and numerical study of fracture coalescence in pre-cracked specimens under uniaxial compression[J]. International Journal of Solids and Structures,2011,48(6):979−999. doi: 10.1016/j.ijsolstr.2010.12.001
    [4]
    张波,李术才,杨学英,等. 含交叉裂隙节理岩体单轴压缩破坏机制研究[J]. 岩土力学,2014,35(7):1863−1870.

    ZHANG Bo,LI Shucai,YANG Xueying,et al. Uniaxial compression failure mechanism of jointed rock mass with cross-cracks[J]. Rock and Soil Mechanics,2014,35(7):1863−1870.
    [5]
    田文岭,杨圣奇,黄彦华. 不同围压下共面双裂隙脆性砂岩裂纹演化特性颗粒流模拟研究[J]. 采矿与安全工程学报,2017,34(6):1207−1215.

    TIAN Wenling,YANG Shengqi,HUANG Yanhua. PFC2D simulation on crack evolution behavior of brittle sandstone containing two coplanar fissures under different confining pressures[J]. Journal of Mining & Safety Engineering,2017,34(6):1207−1215.
    [6]
    邓正定,吴建奇,尚佳辉,等. 含贯通-非贯通交叉节理岩体等效弹性模型及强度特性[J]. 煤炭学报,2018,43(11):3098−3106.

    DENG Zhengding,WU Jianqi,SHANG Jiahui,et al. Equivalent elastic model and strength properties for cross-jointed rock mass containing persistent and non-persistent joints[J]. Journal of China Coal Society,2018,43(11):3098−3106.
    [7]
    PRUDENCIO M,VAN SINT JAN M. Strength and failure modes of rock mass models with non-persistent joints[J]. International Journal of Rock Mechanics and Mining Sciences,2007,44(6):890−902. doi: 10.1016/j.ijrmms.2007.01.005
    [8]
    刘汉香,别鹏飞,李欣,等. 三轴多级循环加卸载下千枚岩的力学特性及能量耗散特征研究[J]. 岩土力学,2022,43(S2):265−274,281.

    LIU Hanxiang,BIE Pengfei,LI Xin,et al. Mechanical properties and energy dissipation characteristics of phyllite under triaxial multi-stage cyclic loading and unloading conditions[J]. Rock and Soil Mechanics,2022,43(S2):265−274,281.
    [9]
    张志镇,高峰. 单轴压缩下红砂岩能量演化试验研究[J]. 岩石力学与工程学报,2012,31(5):953−962. doi: 10.3969/j.issn.1000-6915.2012.05.012

    ZHANG Zhizhen,GAO Feng. Experimental research on energy evolution of red sandstone samples under uniaxial compression[J]. Chinese Journal of Rock Mechanics and Engineering,2012,31(5):953−962. doi: 10.3969/j.issn.1000-6915.2012.05.012
    [10]
    张志镇,高峰. 受载岩石能量演化的围压效应研究[J]. 岩石力学与工程学报,2015,34(1):1−11.

    ZHANG Zhizhen,GAO Feng. Confining pressure effect on rock energy[J]. Chinese Journal of Rock Mechanics and Engineering,2015,34(1):1−11.
    [11]
    LIU M X,LIU E L. Dynamic mechanical properties of artificial jointed rock samples subjected to cyclic triaxial loading[J]. International Journal of Rock Mechanics and Mining Sciences,2017,98:54−66. doi: 10.1016/j.ijrmms.2017.07.005
    [12]
    徐颖,李成杰,郑强强,等. 循环加卸载下泥岩能量演化与损伤特性分析[J]. 岩石力学与工程学报,2019,38(10):2084−2091.

    XU Ying,LI Chengjie,ZHENG Qiangqiang,et al. Analysis of energy evolution and damage characteristics of mudstone under cyclic loading and unloading[J]. Chinese Journal of Rock Mechanics and Engineering,2019,38(10):2084−2091.
    [13]
    Lou P J,Li C J,Liang S L,et al. Hysteresis characteristics of Brittleck deformation under constant load cycling and Unloading [J]. Tehni CKIVJESNIK,2020,27(3) .
    [14]
    LIU Y,DAI F,DONG L,et al. Experimental investigation on the fatigue mechanical properties of intermittently jointed rock models under cyclic uniaxial compression with different loading parameters[J]. Rock Mechanics and Rock Engineering,2018,51(1):47−68. doi: 10.1007/s00603-017-1327-7
    [15]
    李子运,吴光,黄天柱,等. 三轴循环荷载作用下页岩能量演化规律及强度失效判据研究[J]. 岩石力学与工程学报,2018,37(3):662−670.

    LI Ziyun,WU Guang,HUANG Tianzhu,et al. Variation of energy and criteria for strength failure of shale under traixial cyclic loading[J]. Chinese Journal of Rock Mechanics and Engineering,2018,37(3):662−670.
    [16]
    周喻,刘冰,王莉,等. 单轴压缩条件下含双圆孔类岩石试样力学特性的细观研究[J]. 岩石力学与工程学报,2017,36(11):2662−2671.

    ZHOU Yu,LIU Bing,WANG Li,et al. Mesoscopic mechanical properties of rock-like material containing two circular holes under uniaxial compression[J]. Chinese Journal of Rock Mechanics and Engineering,2017,36(11):2662−2671.
    [17]
    武东阳,蔚立元,苏海健,等. 单轴压缩下加锚裂隙类岩石试块裂纹扩展试验及PFC3D模拟[J]. 岩土力学,2021,42(6):1681−1692.

    WU Dongyang,YU Liyuan,SU Haijian,et al. Experimental study and PFC3D simulation on crack propagation of fractured rock-like specimens with bolts under uniaxial compression[J]. Rock and Soil Mechanics,2021,42(6):1681−1692.
    [18]
    汤双臣,冯鹏,赵家琛. 含交叉裂隙岩石试样单轴力学特性与破坏机理[J]. 地下空间与工程学报,2021,17(5):1376−1383,1407.

    TANG Shuangchen,FENG Peng,ZHAO Jiachen. Uniaxial mechanical properties and failure mechanism of rock specimens containing cross fissures[J]. Chinese Journal of Underground Space and Engineering,2021,17(5):1376−1383,1407.
    [19]
    周辉,孟凡震,张传庆,等. 不同位置和尺寸的裂隙对岩体破坏影响的试验研究[J]. 岩石力学与工程学报,2015,34(S1):3018−3028.

    ZHOU Hui,MENG Fanzhen,ZHANG Chuanqing,et al. Experimental study on effect of joints with different locations and sizes on rock failure[J]. Chinese Journal of Rock Mechanics and Engineering,2015,34(S1):3018−3028.
    [20]
    李欣慰,姚直书,黄献文,等. 循环加卸载下砂岩变形破坏特征与能量演化研究[J]. 岩土力学,2021,42(6):1693−1704.

    LI Xinwei,YAO Zhishu,HUANG Xianwen,et al. Investigation of deformation and failure characteristics and energy evolution of sandstone under cyclic loading and unloading[J]. Rock and Soil Mechanics,2021,42(6):1693−1704.
    [21]
    YANG S Q,JING H W. Strength failure and crack coalescence behavior of brittle sandstone samples containing a single fissure under uniaxial compression[J]. International Journal of Fracture,2011,168(2):227−250. doi: 10.1007/s10704-010-9576-4
    [22]
    YANG S Q. Crack coalescence behavior of brittle sandstone samples containing two coplanar fissures in the process of deformation failure[J]. Engineering Fracture Mechanics,2011,78(17):3059−3081. doi: 10.1016/j.engfracmech.2011.09.002
    [23]
    JIN Y,QI Z L,CHEN M,et al. Time-sensitivity of the Kaiser effect of acoustic emission in limestone and its application to measurements of in situ stress[J]. Petroleum Science,2009,6(2):176−180. doi: 10.1007/s12182-009-0028-6
    [24]
    LI C,NORDLUND E. Experimental verification of the Kaiser effect in rocks[J]. Rock Mechanics and Rock Engineering,1993,26(4):333−351. doi: 10.1007/BF01027116
    [25]
    Itasca Consulting Group Inc. UDEC(universal distinct element code)[M]. Version 4.1. Minneapolis:Itasca;2011.
    [26]
    YAN D X,XU W Y. Mechanical characteristics of columnar jointed rock at dam base of Baihetan hydropower station[J]. J. Cent. South Univ. Technol,2011,18:2157−2162. doi: 10.1007/s11771-011-0957-2

Catalog

    Article views (40) PDF downloads (22) Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return