Coal Geology & Exploration
Abstract
Objective To determine the deformation and failure mechanisms of fractured rock masses with rock bridges in alpine regions, this study conducted mechanical property tests on rock samples with varying lengths of rock bridges subjected to cyclic freezing and thawing. Methods Through experiments, this study summarized the characteristics of the static strength deterioration of rock masses under the combined effects of different numbers of freezing and thawing cycles and varying rock bridge lengths. By combining acoustic emission signal monitoring and scanning electron microscopy, this study thoroughly explored both the evolutionary characteristics of fractures and rock rupture modes. Accordingly, it revealed the macroscopic and microscopic failure mechanisms of rock masses with varying lengths of rock bridges under cyclic freezing and thawing. Results The results indicate that with an increase in the number of freezing and thawing cycles, the rock sample with a shorter rock bridge exhibited greater loss rates of both mass and P-wave velocity. As the number rose, the peak strengths and moduli of elasticity of the rock samples gradually decreased, with their deterioration rates significantly decreasing. In the case of the same number of freezing and thawing cycles, a smaller distance between the bottom of a rock sample and fractures in the lower part of the rock bridge of the sample led to a lower overall rock mass strength. The peak stresses of rock samples with different lengths of rock bridges decreased in the order of the intact sample, and samples with rock bridge lengths of 50 mm, 60 mm, and 40 mm sequentially. Acoustic emission tests demonstrated that the sample with a 50-mm-long rock bridge exhibited the highest cumulative ringing count, while that with a 40-mm-long rock bridge showed the lowest count. The ringing count of the rock samples showed a positive correlation with peak stress but a negative correlation with the number of freezing and thawing cycles. The b-value in the acoustic emission tests fluctuated generally. Cyclic freezing and thawing caused the b-value to decline earlier, corresponding to the formation of large fractures in rocks. Macroscopically, the rock samples showed a more random microcrack direction distribution at the rock bridge tips after cyclic freezing and thawing. Consequently, penetration failure of the rock bridges occurred more rarely, with the failure mode shifting from single failure to tensile-shear hybrid failure. Microscopically, the damage mode evolved from cement damage to the breakage of mineral grains, with the fragmentation zone expanding progressively. These findings indicated that with an increase in the number of freezing and thawing cycles, the tightness of rock sample structures decreased significantly. As a result, intergranular fractures became interconnected to form networks and penetrated, leading to the significant denudation of cemented minerals and causing a systematic loss of inter-particle bonding force. Conclusions Adjusting the rock bridge length plays a key role in enhancing rock masses’ resistance to freezing and thawing in alpine regions, with the optimal rock bridge length contributing to effectively reduced ranges of stress concentration zones at fracture ends and slow deterioration caused by cyclic freezing and thawing. In engineering practices, the rock bridge length should be appropriately adjusted to achieve a balance between freeze resistance and mechanical stability. Furthermore, it is necessary to enhance the monitoring of fracture tips to restrict the rapid degradation induced by stress concentration.
Keywords
alpine region, cyclic freezing and thawing, rock bridge length, mechanical property, acoustic emission characteristics, failure mode
DOI
10.12363/issn.1001-1986.25.07.0507
Recommended Citation
ZHANG Huimei, LI Zengle, CHEN Shiguan,
et al.
(2025)
"An experimental study on the deterioration characteristics of sandstone masses with rock bridges under cyclic freezing and thawing,"
Coal Geology & Exploration: Vol. 53:
Iss.
11, Article 20.
DOI: 10.12363/issn.1001-1986.25.07.0507
Available at:
https://cge.researchcommons.org/journal/vol53/iss11/20
Reference
[1] 赵洪宝,胡桂林,李伟,等. 预制裂隙岩石裂纹扩展规律的研究进展与思考[J]. 地下空间与工程学报,2016,12(增刊2):899−906.
ZHAO Hongbao,HU Guilin,LI Wei,et al. Research progress and thinking on the crack propagation law of pre–fractured rock[J]. Chinese Journal of Underground Space and Engineering,2016,12(Sup.2):899−906.
[2] 易婷,唐建新,王艳磊. 裂隙倾角及数目对岩体强度和破坏模式的影响[J]. 地下空间与工程学报,2021,17(1):98−106.
YI Ting,TANG Jianxin,WANG Yanlei. Effect of fracture dip angle and number on mechanical properties and failure modes of rock mass[J]. Chinese Journal of Underground Space and Engineering,2021,17(1):98−106.
[3] 徐光苗,刘泉声. 岩石冻融破坏机理分析及冻融力学试验研究[J]. 岩石力学与工程学报,2005,24(17):3076−3082.
XU Guangmiao,LIU Quansheng. Analysis of mechanism of rock failure due to freeze–thaw cycling and mechanical testing study on frozen–thawed rocks[J]. Chinese Journal of Rock Mechanics and Engineering,2005,24(17):3076−3082.
[4] 伊明,赵涛,马飞飞,等. 基于Weibull分布的冻结砂岩损伤本构模型研究[J]. 煤田地质与勘探,2022,50(8):116−124.
YI Ming,ZHAO Tao,MA Feifei,et al. Study of constitutive model of frozen sandstone damage based on Weibull distribution[J]. Coal Geology & Exploration,2022,50(8):116−124.
[5] 张牡丹,王苏然,曾健霜,等. 花岗岩超低温冻融循环后力学特性研究[J]. 上海理工大学学报,2017,39(5):484−489.
ZHANG Mudan,WANG Suran,ZENG Jianshuang,et al. Mechanical properties of granite under ultra–low temperature freeze–thaw cycles[J]. Journal of University of Shanghai for Science and Technology,2017,39(5):484−489.
[6] KODAMA J,GOTO T,FUJII Y,et al. The effects of water content,temperature and loading rate on strength and failure process of frozen rocks[J]. International Journal of Rock Mechanics and Mining Sciences,2013,62:1−13.
[7] 孟祥振,张慧梅,李玉根,等. 基于动态损伤速率的岩石损伤本构模型[J]. 煤田地质与勘探,2024,52(10):119−128.
MENG Xiangzhen,ZHANG Huimei,LI Yugen,et al. A dynamic damage rate–based constitutive model for rock damage[J]. Coal Geology & Exploration,2024,52(10):119−128.
[8] 严加驹,邵国梁,夏冬,等. 冻融作用下条带状磁铁石英岩损伤机理试验研究[J]. 煤炭科学技术,2025,53(增刊1):13−23.
YAN Jiaju,SHAO Guoliang,XIA Dong,et al. Experimental study on damage mechanism of banded magnetite quartzite under freeze–thaw[J]. Coal Science and Technology,2025,53(Sup.1):13−23.
[9] 宋勇军,操警辉. 冻融–荷载共同作用下砂岩损伤力学特性[J]. 煤炭科学技术,2024,52(12):94−104.
SONG Yongjun,CAO Jinghui. Damage mechanical properties of sandstone under combined action of freeze–thaw and load[J]. Coal Science and Technology,2024,52(12):94−104.
[10] 李天国,唐彬,程桦,等. 锚固条件下煤系地层裂隙岩体蠕变力学特性研究[J]. 岩土力学,2024,45(10):3003−3012.
LI Tianguo,TANG Bin,CHENG Hua,et al. Creep mechanical characteristics of fractured rock mass in coal measure strata under anchoring conditions[J]. Rock and Soil Mechanics,2024,45(10):3003−3012.
[11] 梁东旭,张农,荣浩宇. 交叉裂隙岩体裂纹扩展试验及混合有限–离散元数值模拟研究[J]. 岩土力学,2023,44(4):1217−1229.
LIANG Dongxu,ZHANG Nong,RONG Haoyu. Experiment and hybrid finite–discrete element modelling of crack propagation in cross–fissured rock masses[J]. Rock and Soil Mechanics,2023,44(4):1217−1229.
[12] CAO Ping,LIU Taoying,PU Chengzhi,et al. Crack propagation and coalescence of brittle rock–like specimens with pre–existing cracks in compression[J]. Engineering Geology,2015,187:113−121.
[13] 蒋力帅,杨一鸣,赵阳,等. 动载下含内部裂隙类岩体力学响应与能量耗散规律[J]. 煤炭科学技术,2025,53(2):137−150.
JIANG Lishuai,YANG Yiming,ZHAO Yang,et al. Mechanical response and energy dissipation law of rock–like mass with internal fractures under dynamic load[J]. Coal Science and Technology,2025,53(2):137−150.
[14] 刘冶. 冻融循环条件下节理岩体损伤破坏机理研究[D]. 北京:中国地质大学(北京),2013.
LIU Ye. Study on damage failure mechanism of jointed rockmass under freeze–thaw cycle condition[D]. Beijing:China University of Geosciences (Beijing),2013.
[15] 田森,赵映,司鹄,等. 寒区露天矿岩质边坡裂隙岩体冻融损伤特征及力学特性试验研究[J]. 煤炭学报,2024,49(12):4687−4700.
TIAN Sen,ZHAO Ying,SI Hu,et al. Experimental study on freeze–thaw damage characteristics and mechanical properties of fractured rock mass of surface mine slope in cold region[J]. Journal of China Coal Society,2024,49(12):4687−4700.
[16] WANG Y,HAN J Q,LI C H. Acoustic emission and CT investigation on fracture evolution of granite containing two flaws subjected to freeze–thaw and cyclic uniaxial increasing–amplitude loading conditions[J]. Construction and Building Materials,2020,260:119769.
[17] 袁超,张慧梅,车虎斌,等. 甘肃省平山湖矿区冻融裂隙红砂岩力学响应与损伤机制研究[J/OL]. 煤炭学报,2025:1–15 [2025-04-30]. https://link.cnki.net/doi/10.13225/j.cnki.jccs.2024.1550.
YUAN Chao,ZHANG Huimei,CHE Hubin,et al. Research on the mechanical response and damage mechanism of freeze–thaw fractured red sandstone in Pingshanhu mining area,Gansu Province[J/OL]. Journal of China Coal Society,2025:1–15 [2025-04-30]. https://link.cnki.net/doi/10.13225/j.cnki.jccs.2024.1550.
[18] LEI Guangfeng,LIU Quansheng,PENG Xingxin,et al. Experimental study on mechanical properties of fractured rock mass under different anchoring modes[J]. European Journal of Environmental and Civil Engineering,2020,24(7):931−948.
[19] YANG Shengqi,TIAN Wenling,HUANG Yanhua,et al. An experimental and numerical study on cracking behavior of brittle sandstone containing two non–coplanar fissures under uniaxial compression[J]. Rock Mechanics and Rock Engineering,2016,49(4):1497−1515.
[20] 陈国庆,刘辉,秦昌安,等. 中部锁固岩桥三轴加卸荷力学特性及裂纹扩展研究[J]. 岩石力学与工程学报,2017,36(5):1162−1173.
CHEN Guoqing,LIU Hui,QIN Chang’an,et al. Mechanical properties and crack model of central rock bridge in triaxial unloading test[J]. Chinese Journal of Rock Mechanics and Engineering,2017,36(5):1162−1173.
[21] 陈国庆,赵聪,刘辉,等. 不同应力路径下岩桥试验的声发射特征研究[J]. 岩石力学与工程学报,2016,35(9):1792−1804.
CHEN Guoqing,ZHAO Cong,LIU Hui,et al. Acoustic emission characteristics of rock bridge test under different stress paths[J]. Chinese Journal of Rock Mechanics and Engineering,2016,35(9):1792−1804.
[22] ZHONG Zhu,HUANG Da,ZHANG Yongfa,et al. Experimental study on the effects of unloading normal stress on shear mechanical behaviour of sandstone containing a parallel fissure pair[J]. Rock Mechanics and Rock Engineering,2020,53(4):1647−1663.
[23] 陈国庆,许强,杨鑫,等. 气候变化下高寒区裂隙岩石破裂机制及致灾模式[J]. 地球科学,2025,50(4):1585−1598.
CHEN Guoqing,XU Qiang,YANG Xin,et al. Fracture propagation characteristics and catastrophic modes of fractured rock in alpine region under climate change[J]. Earth Science,2025,50(4):1585−1598.
[24] YIN Tubing,YIN Jiewen,WU You,et al. Water saturation effects on the mechanical characteristics and fracture evolution of sandstone containing pre–existing flaws[J]. Theoretical and Applied Fracture Mechanics,2022,122:103605.
[25] 雷瑞德,顾清恒,胡超,等. 裂隙砂岩声发射信号特征及破裂前兆识别研究[J]. 岩土力学,2025,46(7):2023−2038.
LEI Ruide,GU Qingheng,HU Chao,et al. Acoustic emission signal characteristics and precursory recognition of rock failure in fractured sandstone[J]. Rock and Soil Mechanics,2025,46(7):2023−2038.
[26] 张凯,张东晓,赵勇强,等. 损伤岩石声发射演化特征及响应机制试验研究[J]. 煤田地质与勘探,2024,52(3):96−106.
ZHANG Kai,ZHANG Dongxiao,ZHAO Yongqiang,et al. Experimental study on acoustic emission evolution characteristics and response mechanism of damaged rocks[J]. Coal Geology & Exploration,2024,52(3):96−106.
[27] 王述红,庄贤鹏,王菲,等. 循环荷载下双裂隙砂岩弹性模量及裂纹动态演化[J]. 东北大学学报(自然科学版),2024,45(3):361−371.
WANG Shuhong,ZHUANG Xianpeng,WANG Fei,et al. Elastic modulus and dynamic evolution of fracture in double–fractured sandstone under cyclic loading[J]. Journal of Northeastern University (Natural Science),2024,45(3):361−371.
[28] 陈结,孟历德仁,崔义,等. 基于声光联合试验的预制双裂隙砂岩损伤演化特征研究[J]. 岩石力学与工程学报,2025,44(1):30−42.
CHEN Jie,MENGLI Deren,CUI Yi,et al. Study on the damage evolution characteristics of prefabricated double–fracture sandstone based on acoustic–optical combined tests[J]. Chinese Journal of Rock Mechanics and Engineering,2025,44(1):30−42.
[29] 张庆贺,陈晨,袁亮,等. 基于DIC和YOLO算法的复杂裂隙岩石破坏过程动态裂隙早期智能识别[J]. 煤炭学报,2022,47(3):1208−1219.
ZHANG Qinghe,CHEN Chen,YUAN Liang,et al. Early and intelligent recognition of dynamic cracks during damage of complex fractured rock masses based on DIC and YOLO algorithms[J]. Journal of China Coal Society,2022,47(3):1208−1219.
[30] 申艳军,杨更社,荣腾龙,等. 岩石冻融循环试验建议性方案探讨[J]. 岩土工程学报,2016,38(10):1775−1782.
SHEN Yanjun,YANG Gengshe,RONG Tenglong,et al. Proposed scheme for freeze–thaw cycle tests on rock[J]. Chinese Journal of Geotechnical Engineering,2016,38(10):1775−1782.
[31] 曾正文,马瑾,刘力强,等. 岩石破裂扩展过程中的声发射b值动态特征及意义[J]. 地震地质,1995,17(1):7−12.
ZENG Zhengwen,MA Jin,LIU Liqiang,et al. Ae b–value dynamic features during rockmass fracturing and their significances[J]. Seismology and Geology,1995,17(1):7−12.
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