[1] 钱鸣高,许家林,缪协兴. 煤矿绿色开采技术[J]. 中国矿业大学学报,2003,32(4):343–348.(QIAN Minggao,XU Jialin,MIAO Xiexing. Green technique in coal mining[J]. Journal of China University of Mining and Technology,2003,32(4):343–348.(in Chinese))
[2] 杜明泽,康天合,尹 博,等. 粉煤灰充填材料早龄期物理力学特性及其水化过程分析[J]. 岩石力学与工程学报,2016,35(4):826–836.(DU Mingze,KANG Tianhe,YIN Bo,et al. Physic-mechanical properties of fly ash filling material at early age and its hydration process[J]. Chinese Journal of Rock Mechanics and Engineering,2016,35(4):826–836.(in Chinese))
[3] 周华强,侯朝炯,孙希奎,等. 固体废物膏体充填不迁村采煤[J]. 中国矿业大学学报,2004,33(2):154–158.(ZHOU Huaqiang,HOU Chaojiong,SUN Xikui,et al. Solid waste paste filling for none-village-relocation coal mining[J]. Journal of China University of Mining and Technology,2004,33(2):154–158.(in Chinese))
[4] 崔增娣,孙恒虎. 煤矸石凝石似膏体充填材料的制备及其性能[J]. 煤炭学报,2010,35(6):896–899.(CUI Zengdi,SUN Henghu. The preparation and properties of coal gangue based sialite paste-like backfill material[J]. Journal of China Coal Society,2010,35(6):896–899.(in Chinese))
[5] 任 昂,冯国瑞,郭育霞,等. 粉煤灰对煤矿充填膏体性能的影 响[J]. 煤炭学报,2014,39(12):2 374–2 380.(REN Ang,FENG Guorui,GUO Yuxia,et al. Influence on performance of coal mine filling paste with fly ash[J]. Journal of China Coal Society,2014,39(12):2 374–2 380.(in Chinese))
[6] 毋林林,康天合,尹 博,等. 粉煤灰膏体充填材料水化放热特性的微量热测试与分析[J]. 煤炭学报,2015,40(12):2 801–2 806. (WU Linlin,KANG Tianhe,YIN Bo,et al. Microcalorimetric test and analysis of hydration heat of fly ash paste-filling material[J]. Journal of China Coal Society,2015,40(12):2 801–2 806.(in Chinese))
[7] 赵才智,周华强,瞿群迪,等. 膏体充填材料力学性能的初步实验[J]. 中国矿业大学学报,2004,33(2):159–161.(ZHAO Caizhi,ZHOU Huaqiang,QU Qundi,et al. Preliminary test on mechanical properties of paste filling material[J]. Journal of China University of Mining and Technology,2004,33(2):159–161.(in Chinese))
[8] 姜关照,吴爱祥,王贻明,等. 复合激发剂对铜炉渣活性影响及充填材料制备[J]. 北京科技大学学报,2017,39(9):1 305–1 312. (JIANG Guanzhao,WU Aixiang,WANG Yiming,et al. Effect of compound activator on copper slag activity and preparation of filling materials[J]. Chinese Journal of Engineering,2017,39(9):1 305–1 312.(in Chinese))
[9] WU D,YANG B G,LIU Y C. Transportability and pressure drop of fresh cemented coal gangue-fly ash backfill (CGFB) slurry in pipe loop[J]. Powder Technology,2015,284:218–224.
[10] 徐俊明,张吉雄,黄艳利,等. 充填综采矸石–粉煤灰压实变形特性试验研究及应用[J]. 采矿与安全工程学报,2011,28(1):158–162. (XU Junming,ZHANG Jixiong,HUANG Yanli,et al. Experimental research on the compress deformation characteristic of waste-flyash and its application in backfilling fully mechanized coal mining technology[J]. Journal of Mining and Safety Engineering,2011,28(1):158–162.(in Chinese))
[11] 吴爱祥,刘晓辉,王洪江,等. 结构流充填料浆管道输送阻力特性[J]. 中南大学学报:自然科学版,2014,45(12):4 325–4 330.(WU Aixiang,LIU Xiaohui,WANG Hongjiang,et al. Resistance characteristics of structure fluid backfilling slurry in pipeline transport[J]. Journal of Central South University:Natural Science,2014,45(12):4 325– 4 330.(in Chinese))
[12] 刘建功,赵庆彪. 综合机械化充填采煤[J]. 煤炭学报,2010,35(9):1 413–1 418.(LIU Jiangong,ZHAO Qingbiao. Comprehensive mechanized filling coal mining[J]. Journal of China Coal Society,2010,35(9):1 413–1 418.(in Chinese))
[13] 金贤玉,王宇纬,田 野,等. 基于微观信息的水泥水化动力学模型研究[J]. 建筑材料学报,2014,17(5):862–867.(JIN Xianyu,WANG Yuwei,TIAN Ye,et al. Research on kinetics model of cement hydration based on microstructure information[J]. Journal of Building Materials,2014,17(5):862–867.(in Chinese)).
[14] NAVI P,PIGNAT C. Simulation of effects of small inert grains on cement hydration and its contact surfaces[M]. [S. l.]:Springer Netherlands,1996:227–240.
[15] 姚 武,王 伟,魏永起. 硅酸盐水泥水化动力学简化模型[J]. 哈尔滨工业大学学报,2013,45(10):81–85.(YAO Wu,WANG Wei,WEI Yongqi. A simplified model of hydration kinetics for portland cement[J]. Journal of Harbin Institute of Technology,2013,45(10):81–85.(in Chinese))
[16] YAN P Y,ZHENG F. Kinetic model for the hydration mechanism of cementitious materials[J]. Journal Chinese Ceramic Society,2006,34(5):555.
[17] HAN F,ZHANG Z,WANG D,et al. Hydration heat evolution and kinetics of blended cement containing steel slag at different temperatures[J]. Thermochimica Acta,2015,605:43–51.
[18] ZHANG N,LI H,LIU X. Hydration kinetics of cementitious materials composed of red mud and coal gangue[J]. International Journal of Minerals,Metallurgy,and Materials,2016,23(10):1 215–1 224.
[19] KRSTULOVI? R,DABI? P. A conceptual model of the cement hydration process[J]. Cement and Concrete Research,2000,30(5):693–698.
[20] TADROS M E,SKALNY J,KALYONCU R S. Early Hydration of Tricalcium Silicate[J]. Journal of the American Ceramic Society,2010,59(7/8):344–347.
[21] GAWLICKI M,NOCU?-WCZELIK W,?UKASZ B?K. Calorimetry in the studies of cement hydration[J]. Journal of Thermal Analysis and Calorimetry,2010,100(2):571–576.
[22] WEI F,GRUTZECK M W,ROY D M. The retarding effects of fly ash upon the hydration of cement pastes:The first 24 hours[J]. Cement and Concrete Research,1985,15(1):174–184.
[23] XU A,SARKAR S L,NILSSON L O. Effect of fly ash on the microstructure of cement mortar[J]. Materials and Structures,1993,26(7):414–424.
[24] SHI C,JIMÉNEZ A F,PALOMO A. New cements for the 21st century:The pursuit of an alternative to Portland cement[J]. Cement and Concrete Research,2011,41(7):750–763.
[25] TAYLOR HFW. Cement Chemistry[M]. London:Thomas Telford Publishing,1997:275.
[26] 袁润章. 胶凝材料学[M]. 武汉:武汉理工大学出版社,1996:90–110.(YUAN Runzhang. Cementitious material science[M]. Wuhan:Wuhan University of Technology Press,1996:90–110.(in Chinese))
[27] MASON E S. Chemistry of hydration of cements and cementitious systems[J]. Hitotsubashi Review,1992,59(3):383–433.
[28] XU H,VAN DEVENTER J S J. The geopolymerisation of alumino- silicate minerals[J]. International Journal of Mineral Processing,2000,59(3):247–266.