论著成果
Achievements
学术论文

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 [2]  Chang J, Wang W, Wen L. et al. Localization and Bifurcation Analysis of Granular Materials in Micropolar Continuum[J]. International journal of geomechanics, 2019,19(7):4019061-4019064.

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[13] Wang W, Liu S, Wang Q. et al. The impact of traffic-Induced bridge vibration on rapid repairing high-Performance concrete for bridge deck pavement repairs[J]. Advances in Materials Science and Engineering, 2014,2014.

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[29] 王伟, 李小春, 李强, 等. 小尺度原位瞬态压力脉冲渗透性测试系统及试验研究[J]. 岩土力学, 2011,32(10):3185-3189.

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[33] 袁维, 郝笑甜, 李小春, 等. 一种考虑变形参数和强度参数协调折减的强度折减法研究[J]. 岩土力学, 2016,37(07):2096-2100.

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[35] 袁维, 李小春, 王伟, 等. 一种双折减系数的强度折减法研究[J]. 岩土力学, 2016,37(08):2222-2230.

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[38] Chen S, Wu A, Wang Y. et al. Coupled effects of curing stress and curing temperature on mechanical and physical properties of cemented paste backfill[J]. Construction and Building Materials, 2021,273:121746.

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[40] Chen S, Wu A, Wang Y. et al. Multi-objective optimization of stope structure parameters in broken rock conditions using grey relational analysis[J]. Archives of Mining Sciences, 2018,63(2).

[41] Chen S, Wu A, Wang Y. et al. Study on repair control technology of soft surrounding rock roadway and its application[J]. Engineering Failure Analysis, 2018,92:443-455.

[42] 陈顺满, 吴爱祥, 王贻明, 等. 基于粗糙集和改进功效系数法的岩体质量评价[J]. 华中科技大学学报(自然科学版), 2018,46(07):36-41.

[43] 陈顺满, 吴爱祥, 王贻明. 基于贡献率和未确知测度理论的矿柱稳定性预测[J]. 武汉大学学报(工学版), 2017,50(05):697-703.

[44] 陈顺满, 吴爱祥, 王贻明, 等. 基于决策树模型的岩爆烈度预测[J]. 武汉科技大学学报, 2016,39(03):195-199.

[45] 陈顺满, 吴爱祥, 王贻明, 等. 基于响应面法的破碎围岩条件下采场结构参数优化研究[J]. 岩石力学与工程学报, 2017,36(S1):3499-3508.

[46] 陈顺满, 吴爱祥, 王少勇, 等. 软弱围岩巷道变形机理及返修控制技术[J]. 中国矿业大学学报, 2018,47(04):830-837.

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[51] 杨海涛, 刘娟红, 纪洪广, 等. 利用优化的水渗透试验研究SAPs的裂缝愈合机理[J]. 材料导报, 2020,34(08):8188-8193.

[52] Zheng Y, Liu J, Liu Y. et al. Experimental Investigation on the Stress-Dependent Permeability of Intact and Fractured Shale[J]. Geofluids, 2020,2020(1):1-16.

[53] 郑永香, 刘建军. 注水条件下近裂缝带的地应力演化规律[J]. 大庆石油地质与开发, 2020,39(01):62-73.

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[55] Che F, Yin C, Zhang H. et al. Assessing the Risk Probability of the Embankment Seismic Damage Using Monte Carlo Method[J]. Advances in Civil Engineering, 2020,2020(2):1-13.

[56] Che F, Yin C, Zhou J. et al. Embankment Seismic Fragility Assessment under the Near-Fault Pulse-like Ground Motions by Applying the Response Surface Method[J]. Shock and Vibration, 2021,2021(9):1-15.

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[58] Yin C, Li H, Che F. et al. Susceptibility mapping and zoning of highway landslide disasters in China[J]. PLoS ONE, 2020,15(9):e235780.

[59] 尹超, 李伟华, 赵成刚. SV波斜入射下坡体地形放大效应的研究[J]. 振动工程学报, 2020,33(05):971-984.

[60] 尹超, 周爱红, 袁颖, 等. 基于邻域粗糙集和支持向量机的固结系数预测[J]. 吉林大学学报(地球科学版), 2019,49(03):746-754.

[61] 尹超, 李伟华, 李舰, 等. 考虑拉剪耦合作用地震边坡稳定性分析[J]. 中国公路学报, 2018,31(02):97-105.

[62] 闻磊, 李夕兵, 唐海燕, 等. 变温度区间冻融作用下岩石物理力学性质研究及工程应用[J]. 工程力学, 2017,34(05):247-256.

[63] 闻磊, 梁旭黎, 冯文杰, 等. 冲击损伤砂岩动静组合加载力学特性研究[J]. 岩土力学, 2020,41(11):3540-3552.

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[68] Zhou X, Sang S, Niu Q. et al. Changes of Multiscale Surface Morphology and Pore Structure of Mudstone Associated with Supercritical CO2-Water Exposure at Different Times[J]. Energy & Fuels, 2021.

[69] Wang R, Wang Q, Niu Q. et al. CO2 adsorption and swelling of coal under constrained conditions and their stage-change relationship[J]. Journal of Natural Gas Science and Engineering, 2020,76:103205.

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[72] Niu Q, Cao L, Sang S. et al. Experimental study on the softening effect and mechanism of anthracite with CO2 injection[J]. International Journal of Rock Mechanics and Mining Sciences, 2021,138:104614.

[73] Niu Q, Pan J, Jin Y. et al. Fractal study of adsorption-pores in pulverized coals with various metamorphism degrees using N2 adsorption, X-ray scattering and image analysis methods[J]. Journal of Petroleum Science and Engineering, 2019,176:584-593.

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[75] Niu Q, Cao L, Sang S. et al. Study on the anisotropic permeability in different rank coals under influences of supercritical CO2 adsorption and effective stress and its enlightenment for CO2 enhance coalbed methane recovery[J]. Fuel, 2020,262:116515.

[76] Niu Q, Cao L, Sang S. et al. The adsorption-swelling and permeability characteristics of natural and reconstituted anthracite coals[J]. Energy, 2017,141:2206-2217.

[77] Pan J, Niu Q, Wang K. et al. The closed pores of tectonically deformed coal studied by small-angle X-ray scattering and liquid nitrogen adsorption[J]. Microporous and Mesoporous Materials, 2016,224:245-252.

[78] Niu Q, Pan J, Cao L. et al. The evolution and formation mechanisms of closed pores in coal[J]. Fuel, 2017,200:555-563.

[79] Wang Q, Su X, Wu B. et al. A Coupled Damage-Permeability Constitutive Model for Brittle Rocks Subjected to Explosive Loading[J]. Advances in Civil Engineering, 2018,2018:6816974.

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Copyright @ 2021 石家庄铁道大学 深部资源开采与工程地质灾害防控课题组
地址:河北省石家庄市北二环东路17号 邮编:050043
友情链接: 石家庄铁道大学 |  中国科学院武汉岩土力学研究所 |  核工业北京化工冶金研究院 |  河北省金属矿山安全高效开采技术创新中心 |  国家自然科学基金委员会 | 
Copyright @ 2021 石家庄铁道大学 深部资源开采与工程地质灾害防控课题组
地址:河北省石家庄市北二环东路17号 邮编:050043