Journal of Shandong University(Engineering Science) ›› 2025, Vol. 55 ›› Issue (4): 93-107.doi: 10.6040/j.issn.1672-3961.0.2024.271
• Civil Engineering • Previous Articles
ZHANG Qinghao1,2,3, MA Ruiyang1,2,3, LIN Peng1,2,3*, XIE Huihui2,3,4, WANG Zhaoyang1,2,3, KANG Jintao1,2,3, LOU Yanfei1,2,3
CLC Number:
| [1] IRFAN T Y. Mineralogy, fabric properties and classification of weathered granites in Hong Kong[J]. Quarterly Journal of Engineering Geology and Hydrogeology, 1996, 29(1): 5-35. [2] 赵斌, 王芝银, 伍锦鹏. 矿物成分和细观结构与岩石材料力学性质的关系[J]. 煤田地质与勘探, 2013, 41(3): 59-63. ZHAO Bin, WANG Zhiyin, WU Jinpeng. Relation between mineralogical composition and microstructure to the mechanical properties of rock materials[J]. Coal Geology & Exploration, 2013, 41(3): 59-63. [3] 朱长歧, 周斌, 刘海峰. 南海海滩岩的细观结构及其基本物理力学性质研究[J]. 岩石力学与工程学报, 2015, 34(4): 683-693. ZHU Changqi, ZHOU Bin, LIU Haifeng. Micro-structures and fundamental engineering properties of beach calcarenite from South China Sea[J]. Chinese Journal of Rock Mechanics and Engineering, 2015, 34(4): 683-693. [4] 皮锦添, 徐奴文, 张丰收, 等. 基于微震监测与DFN模拟的金川水电站尾闸室破坏机制[J]. 隧道与地下工程灾害防治, 2024, 6(3): 60-72. PI Jintian, XU Nuwen, ZHANG Fengshou, et al. Failure mechanism of tailrace surge chamber in Jinchuan Hydropower Station based on microseismic monitoring and DFN simulation[J]. Hazard Control in Tunnelling and Underground Engineering, 2024, 6(3): 60-72. [5] HECHT C A, BÖNSCH C, BAUCH E. Relations of rock structure and composition to petrophysical and geomechanical rock properties: examples from permocarboniferous red-beds[J]. Rock Mechanics and Rock Engineering, 2005, 38(3): 197-216. [6] KEIKHA T, KEYKHA H A. Correlation between mineralogical characteristics and engineering properties of granitic rocks[J]. Electronic Journal of Geotechnical Engineering, 2013, 18: 4055-4065. [7] SHAO Z L, TANG X H, WANG X G. The influence of liquid nitrogen cooling on fracture toughness of granite rocks at elevated temperatures: an experimental study[J]. Engineering Fracture Mechanics, 2021, 246: 107628. [8] 左建平, 柴能斌, 赵灿, 等. 门头沟玄武岩细观矿物组成与宏观力学行为的关联性研究[J]. 应用基础与工程科学学报, 2015, 23(5): 942-951. ZUO Jianping, CHAI Nengbin, ZHAO Can, et al. Investigation on the relationship between of micro/meso mineral composition and macro mechanical behavior of Mentougou basalt[J]. Journal of Basic Science and Engineering, 2015, 23(5): 942-951. [9] ÖMER Ü. Assessment of mineralogical and petrographic factors affecting petro-physical properties, strength and cracking processes of volcanic rocks[J]. Engineering Geology, 2016, 210: 10-22. [10] 宫凤强, 何志超. 钻孔卸压防治岩爆机理的试验研究进展与展望[J]. 隧道与地下工程灾害防治, 2023, 5(2): 1-23 GONG Fengqiang, HE Zhichao. Progress and prospect of experimental research on the mechanism of rockburst prevention and control by drilling pressure relief[J]. Hazard Control in Tunnelling and Underground Engineering, 2023, 5(2): 1-23. [11] CUNDALL P A, STRACK O D L. Discussion: a discrete numerical model for granular assemblies[J]. Géotechnique, 1980, 30(3): 331-336. [12] HUANG H Y, DETOURNAY E. Discrete element modeling of tool-rock interaction II: rock indentation[J]. International Journal for Numerical and Analytical Methods in Geomechanics, 2013, 37(13): 1930-1947. [13] 王者超, 周尔康. 应力路径对砂岩真三轴变形宏细观特征影响[J]. 隧道与地下工程灾害防治, 2022, 4(2): 1-10. WANG Zhechao, ZHOU Erkang. Effects of stress path on true triaxial macro and micro deformation characteristics of sandstone[J]. Hazard Control in Tunnelling and Underground Engineering, 2022, 4(2): 1-10. [14] 刘黎旺, 李海波, 李晓锋, 等. 基于矿物晶体模型非均质岩石单轴压缩力学特性研究[J]. 岩土工程学报, 2020, 42(3): 542-550. LIU Liwang, LI Haibo, LI Xiaofeng, et al. Research on mechanical properties of heterogeneous rocks using grain-based model under uniaxial compression[J]. Chinese Journal of Geotechnical Engineering, 2020, 42(3): 542-550. [15] POTYONDY D O. A grain-based model for rock: approaching the true microstructure[C] // Proceedings of Rock Mechanics in the Nordic Countries. Kongsberg, Norway: Norwegian Group for Rock Mechanics, 2010: 225-234. [16] 孙港, 王军祥, 孟祥竹, 等. 基于近场动力学理论的岩石双孔爆破动态断裂行为数值模拟[J]. 隧道与地下工程灾害防治, 2023, 5(2): 42-58. SUN Gang, WANG Junxiang, MENG Xiangzhu, et al. Numerical simulation of dynamic fracture behavior of rock dual-hole blasting based on peridynamic theory[J]. Hazard Control in Tunnelling and Underground Engineering, 2023, 5(2): 42-58. [17] HUANG X L, QI S W, GUO S F, et al. Effect of the crystal habit on micromechanical extensile behaviors of the crystalline rock during compression[J]. Engineering Geology, 2022, 310: 106874. [18] KOYAMA T, JING L R. Effects of model scale and particle size on micro-mechanical properties and failure processes of rocks: a particle mechanics approach[J]. Engineering Analysis with Boundary Elements, 2007, 31(5): 458-472. [19] 韩森, 张钦礼. 3D Voronoi等效晶质模型在岩石破坏细观研究中的应用[J]. 中国安全生产科学技术, 2019, 15(6): 88-93. HAN Sen, ZHANG Qinli. Application of 3D Voronoi equivalent crystal model in microscopic study of rock failure[J]. Journal of Safety Science and Technology, 2019, 15(6): 88-93. [20] HU Y P, ZHANG Z R, YAN Z W, et al. Discrete element simulation study on effects of grain preferred orientation on micro-cracking and macro-mechanical behavior of crystalline rocks[J]. Reviews on Advanced Materials Science, 2024, 63(1): 20240001. [21] HOFMANN H, BABADAGLI T, ZIMMERMANN G. A grain based modeling study of fracture branching during compression tests in granites[J]. International Journal of Rock Mechanics and Mining Sciences, 2015, 77: 152-162. [22] PENG J, WONG L N Y, TEH C I, et al. Modeling micro-cracking behavior of bukit timah granite using grain-based model[J]. Rock Mechanics and Rock Engineering, 2018, 51(1): 135-154. [23] GUO P Y, ZHANG P, BU M H, et al. Microcracking behavior and damage mechanism of granite subjected to high temperature based on CT-GBM numerical simulation[J]. Computers and Geotechnics, 2023, 159: 105385. [24] QUAN J S, RONG G, XU L D, et al. A three-dimensional grain-based model for studying the microscopic fracture behaviour of granite[J]. Computers and Geotechnics, 2023, 159: 105427. [25] 严旭锋, 张振宇, 郝胜鹏, 等. 基于矿物晶体模型的非均质裂隙花岗岩双轴压缩微裂纹演化特征[J]. 采矿与岩层控制工程学报, 2024, 6(4): 102-114. YAN Xufeng, ZHANG Zhenyu, HAO Shengpeng, et al. Microcracks evolution of heterogeneous fissured granite under biaxial compression based on grain-based numerical modeling[J]. Journal of Mining and Strata Control Engineering, 2024, 6(4): 102-114. [26] LI X F, ZHANG Q B, LI H B, et al. Grain-based discrete element method(GB-DEM)modelling of multi-scale fracturing in rocks under dynamic loading[J]. Rock Mechanics and Rock Engineering, 2018, 51(12): 3785-3817. [27] MOORE D E, LOCKNER D A. The role of microcracking in shear-fracture propagation in granite[J]. Journal of Structural Geology, 1995, 17(1): 95-114. [28] 付安琪, 蔚立元, 苏海健, 等. 循环冲击损伤后大理岩静态断裂力学特性研究[J]. 岩石力学与工程学报, 2019, 38(10): 2021-2030. FU Anqi, YU Liyuan, SU Haijian, et al. Experimental study on static fracturing mechanical characteristics of marble after cyclic impact loading[J]. Chinese Journal of Rock Mechanics and Engineering, 2019, 38(10): 2021-2030. [29] 张涛, 蔚立元, 苏海健,等. 基于多级力链网络分析的花岗岩压缩特性的矿物尺寸效应研究[J]. 岩石力学与工程学报, 2023, 42(8): 1988-2003. ZHANG Tao, YU Liyuan, SU Haijian, et al. Investigation on the grain size effect of the compression characteristics of granites based on the multi-level force chain network[J]. Chinese Journal of Rock Mechanics and Engineering, 2023, 42(8): 1988-2003. [30] 韩振华, 张路青, 周剑, 等. 矿物粒径对花岗岩单轴压缩特性影响的试验与模拟研究[J]. 工程地质学报, 2019, 27(3): 497-504. HAN Zhenhua, ZHANG Luqing, ZHOU Jian, et al. Uniaxial compression test and numerical studies of grain size effect on mechanical properties of granite[J]. Journal of Engineering Geology, 2019, 27(3): 497-504. [31] LIU G, CAI M, HUANG M. Mechanical properties of brittle rock governed by micro-geometric heterogeneity[J]. Computers and Geotechnics, 2018, 104: 358-372. |
| [1] | Shaosen MA,Weizhong CHEN,Wusheng ZHAO. Experimental study on energy dissipation of granite subjected to three-dimensional coupled static and dynamic loading [J]. Journal of Shandong University(Engineering Science), 2019, 49(3): 95-102. |
| [2] | YAO Zhanyong, ZHANG Hao, SHANG Qingsen, GONG Benhui, LIU Zhihang, WANG Xugang. Properties of cement stabilized weathered granite material under the influence of soluble salt [J]. JOURNAL OF SHANDONG UNIVERSITY (ENGINEERING SCIENCE), 2016, 46(2): 85-93. |
| [3] | ZHOU Hai-long, SHEN Xiang-dong, XUE Hui-jun. Experiment research on unconfined compressive strength of cement soil under small age [J]. JOURNAL OF SHANDONG UNIVERSITY (ENGINEERING SCIENCE), 2014, 44(1): 75-79. |
| [4] | ZHANG Ai-juan, GAO Zeng-li, WANG Wei-wei, LI Cheng-feng. Study of the porous hydroxyapatite scaffold prepared by dipping with polymer foams [J]. JOURNAL OF SHANDONG UNIVERSITY (ENGINEERING SCIENCE), 2012, 42(3): 105-109. |
| [5] | GE Zhi1, WANG Hao2, ZHANG Kun1, LI Peng-cheng1. Investigation on the properties of plastic mortar [J]. JOURNAL OF SHANDONG UNIVERSITY (ENGINEERING SCIENCE), 2012, 42(1): 106-108. |
| [6] | GE Zhi1, WANG Hao2*, ZHENG Li1, MAO Hong-lu1. Properties of concrete containing recycled clay brick powde [J]. JOURNAL OF SHANDONG UNIVERSITY (ENGINEERING SCIENCE), 2012, 42(1): 104-105. |
| [7] | CHEN Ting, GAO Bao-Yu, YUE Qin-Yan. Performance of polyferric-cationic polymer dual-coagulants in treating synthetic disperse yellow and reactive red dyeing wastewater [J]. JOURNAL OF SHANDONG UNIVERSITY (ENGINEERING SCIENCE), 2010, 40(1): 103-107. |
| [8] | WANG Mei,LI Hesheng,LI Musen,TIAN Bin, . Thermal stability comparison of the IIb type and the Ib type diamond [J]. JOURNAL OF SHANDONG UNIVERSITY (ENGINEERING SCIENCE), 2007, 37(6): 41-43 . |
| [9] | JIANG Ji-shun,ZHANG Hou-sheng,CHEN Wen-gang . Novel single-phase PFC corrector with one cycle control [J]. JOURNAL OF SHANDONG UNIVERSITY (ENGINEERING SCIENCE), 2007, 37(2): 67-71 . |
|
||