| [1]刘国磊, 梁文昭, 马秋峰, 等.深部煤巷高三向应力差异区冲击失稳机制[J].岩石力学与工程学报, 2025, 44(4):797-809[2]Liu Guolei, Liang Wenzhao, Ma Qiufeng, et al.Impact instability mechanism in the three-directional stress difference zone of deep coal roadways[J]. Chinese Journal of Rock Mechanics and Engineering, 25, 44(4):797-809.[3]谢和平, 周宏伟, 薛东杰, 等.我国煤与瓦斯共采:理论、技术与工程[J].煤炭学报, 2014, 39(8):1391-1397[4]XIE Heping, ZHOU Hongwei, XUE Dongjie, et al.Theory,technology and engineering of simultaneous exploitation of coal and gas in China[J].Journal of China Coal Society, 2014, 39(8):1391-1397[5]Du X, Xue J, Shi Y, et al.Triaxial mechanical behaviour and energy conversion characteristics of deep coal bodies under confining pressure[J]. Energy, 2023, 266:126443.[6]夏同强, 王有湃, 周福宝, 等.煤岩体应力-渗流-温度多过程耦合试验系统[J].中国矿业大学学报, 2021, 50(2):205-213[7]Xia Tongqiang, Wang Youpai, Zhou Fubao, et al.Multi-process coupling test system of stress-seepage-temperature for coal and rock mass[J].Journal of China University of Mining & Technology, 2021, 50(2):205-213[8]贾恒义, 王 凯, 王益博, 等.围压循环加卸载作用下含瓦斯煤样渗透特性试验研究[J].煤炭学报, 2020, 45(5):1710-1718[9]JIA Hengyi, WANG Kai, WANG Yibo, et al.Permeability characteristics of gas-bearing coal specimens under cyclic loading-unloading of confining pressure[J].Journal of China Coal Society, 2020, 45(5):1710-1718[10]张 磊, 阚梓豪, 薛俊华, 等.循环加卸载作用下完整和裂隙煤体渗透性演变规律研究[J].岩石力学与工程学报, 2021, 40(12):2487-2499[11]Zhang Lei, Kan Zihao, Xue Junhua, et al.Research on the evolution law of permeability of intact and fractured coal under cyclic loading and unloading[J].Chinese Journal of Rock Mechanics and Engineering, 2021, 40(12):2487-2499[12]王辰霖, 张小东, 李贵中, 等.循环加卸载作用下不同高度煤样渗透性试验研究[J].岩石力学与工程学报, 2018, 37(10):2299-2308[13]WANG Chenlin, ZHANG Xiaodong, LI Guizhong, et al.Experimental study on the permeability of coal samples with different heights under cyclic loading and unloading[J].Chinese Journal of Rock Mechanics and Engineering, 2018, 37(10):2299-2308[14]刘 超, 黄 滚, 赵宏刚, 等.复杂应力路径下原煤力学与渗透特性试验[J].岩土力学, 2018, 39(1):191-198[15]LIU Chao, HUANG Gun, ZHAO Honggang, et al.Tests on mechanical and permeability characteristics of raw coal under complex stress paths[J].Rock and Soil Mechanics, 2018, 39(1):191-198[16]岳建华, 杨海燕, 苏本玉, 等.矿井张量电阻率法理论基础研究[J].煤炭学报, 2020, 45(7):2464-2471[17]YUE Jianhua, YANG Haiyan, SU Benyu, et al.Theoretical foundation of tensor measurement for mine resistivity method[J].Journal of China Coal Society, 2020, 45(7):2464-2471[18]李祥春, 张 琪, 安振兴, 等.不同煤体电性参数影响因素实验研究[J].中国矿业大学学报, 2021, 50(03):570-578[19]Li Xiangchun, Zhang Qi, An Zhenxing, et al.Experimental Study of Influencing Factors of Electrical Parameters of Different Coal mass[J].Journal of China University of Mining & Technology, 2021, 50(03):570-578[20]郭跃辉, 雷东记, 张玉贵, 等.水力压裂煤体复电阻率频散特征试验研究[J].煤炭科学技术, 2021, 49(5):198-202[21]GUO Yuehui, LEI Dongji, ZHANG Yugui, et al.Experimental study on dispersion characteristics of complex resistivity of hydraulic fracturing coal[J].Coal Science and Technology, 2021, 49(5):198-202[22]Chen P, Wang E, Chen X, et al.Regularity and mechanism of coal resistivity response with different conductive characteristics in complete stress–strain process[J].International Journal of Mining Science and Technology, 2015, 25(5):779-786[23]赵晨光, 雷东记, 张玉贵.含水煤层复电阻正交裂隙阻容模型[J].煤炭学报, 2020, 45(10):3541-3547[24]ZHAO Chenguang, LEI Dongji, ZHANG Yugui.Orthogonal fracture resistance-capacitance model of complex resistance of containing water coal seam[J].Journal of China Coal Society, 2020, 45(10):3541-3547[25]胡千庭, 宋明洋, 李全贵, 等.单轴压缩破坏下分层型煤电阻率响应分析[J].煤炭学报, 2021, 46(1):211-219[26]HU Qianting, SONG Mingyang, LI Quangui, et al.Analysis of resistivity response of stratified briquette during uniaxial compression[J].Journal of China Coal Society, 2021, 46(1):211-219[27]刘世奇, 高德燚, 桑树勋, 等.不同粒度构造煤的视电阻率特征[J].煤炭科学技术, 2022, 50(12):162-169[28]LIU Shiqi, GAO Deyan, SANG Shuxun, et al.Characteristics of apparent resistivity of coals with different particle sizes[J].Coal Science and Technology, 2022, 50(12):162-169[29]Liu T, Zhao Y, Kong X G, et al.Dynamics of coalbed methane emission from coal cores under various stress paths and its application in gas extraction in mining-disturbed coal seam[J]. Journal of Natural Gas Science and Engineering, 2022, 104:104677[30]荣腾龙, 刘克柳, 周宏伟, 等.采动应力下深部煤体渗透率演化规律研究[J].岩土工程学报, 2022, 44(06):1106-1114[31]Rong Tenglong, Liu Keliu, Zhou Hongwei, et al.Study on the evolution law of deep coal permeability under mining-induced stress[J].Chinese Journal of Geotechnical Engineering, 2022, 44(06):106-1114[32]侯东升, 梁卫国, 张倍宁, 等.驱替煤层中混合气体渗流规律的研究[J].煤炭学报, 2019, 44(11):3463-3471[33]HOU Dongsheng, LIANG Weiguo, ZHANG Beining, et al.Seepagelaw of mixed gases in CO2 displacement of coal seam CH4[J].Journalof China Coal Society, 2019, 44(11):3463-3471[34]Zhang J, Hou X, Liu S, et al.Quantifying and modeling of coal permeability spatiotemporal response: Implications for gas recovery and CO2 sequestration[J]. Fuel, 2025, 388:134561.[35]Qiu L, Dang J, Zhang J, et al.Investigating nonlinear resistivity characteristics and mechanisms of coal during various loading stages[J]. Journal of Applied Geophysics, 2025, 238:105705.[36]Song D Z, Liu Q, Qiu L M, et al.Experimental study on resistivity evolution law and precursory signals in the damage process of gas-bearing coal[J]. Fuel, 2024, 362:130798.[37]郑学召, 吴佩利, 张 铎, 等.微晶结构与矿物元素对煤体电阻率的影响[J].科学技术与工程, 2021, 21(34):14523-14527[38]Zheng Xuezha, Wu Peili, Zhang Duo, et al.Effects of Microcrystalline Structure and Mineral Elements on the Electrical Resistivity of Coal[J].Science Technology and Engineering, 2021, 21(34):14523-14527[39]陈 鹏, 陈学习, 刘永杰, 等.瓦斯压力对煤体电阻率影响规律与机制[J].煤炭科学技术, 2018, 46(07):109-114[40]Chen Peng, Chen Xuexi, Liu Yongjie, et al.Influence Law and Mechanism of Gas Pressure on Coal Resistivity[J].Coal Science and Technology, 2018, 46(07):109-114 |