[1] 朱 建,邓 成,黄祥国,等.半柔性抗车辙路面在苏州市政道路的应用[J].中国市政工程,2016(3):14-16+121. ZHU J, DENG C, HUANG X G, et al. Application of semi-flexible anti-rutting pavement in Suzhou municipal road[J]. China Municipal Engineering, 2016(3): 14-16+121 (in Chinese). [2] 孙秀明,邓 成,柯文汇,等.半柔性路面材料的性能研究与应用[J].江苏建筑,2016(3):92-94. SUN X M, DENG C, KE W H, et al. The application study of semi-flexible anti-rutting pavement used in municipal road[J]. Jiangsu Construction, 2016(3): 92-94 (in Chinese). [3] 赵国强,邓 成,王文达,等.半柔性抗车辙路面材料的性能研究与应用[J].公路交通科技(应用技术版),2015,11(11):124-127. ZHAO G Q, DENG C, WANG W D, et al. Research and application of semi-flexible anti-rutting pavement materials[J]. Journal of Highway Communication Technology, 2015, 11(11): 124-127 (in Chinese). [4] 魏 璐.半柔性抗车辙路面技术应用研究[D].苏州:苏州科技大学,2018. WEI L. Research on technology application of semi flexible pavement[D]. Suzhou: Suzhou University of Science and Technology, 2018 (in Chinese). [5] 霍轶珍,梁 轶,黄宝涛,等.半柔性路面路用性能的试验及机理分析[J].公路,2009,54(2):52-56. HUO Y Z, LIANG Y, HUANG B T, et al. Laboratory test and mechanism analysis of road performance of semi-flexible pavement[J]. Highway, 2009, 54(2): 52-56 (in Chinese). [6] 靳丽莉,高英俊.高流态半柔性路面灌浆料试验研究[J].新型建筑材料,2020,47(3):45-48. JIN L L, GAO Y J. Experimental study on a grouting material for high fluidity semi-flexible pavement[J]. New Building Materials, 2020, 47(3): 45-48 (in Chinese). [7] GONG M H, XIONG Z J, CHEN H, et al. Evaluation on the cracking resistance of semi-flexible pavement mixture by laboratory research and field validation[J]. Construction and Building Materials, 2019, 207: 387-395. [8] 陈祥峰.高性能流动性水泥灌浆材料配合比设计及半柔性路面路用性能研究[D].西安:长安大学,2010. CHEN X F. Study on the mix design of high-performance liquid cement grouting materials and performance for semi-flexible pavement[D]. Xi'an: Chang'an University, 2010 (in Chinese). [9] 谭建军,邓 松,龚明辉,等.半柔性路面在市政道路车辙处治工程中的应用研究[J].中国市政工程,2021(3):102-104+115+129. TAN J J, DENG S, GONG M H, et al. Application of semi-flexible pavement in rutting treatment of municipal roads[J]. China Municipal Engineering, 2021(3): 102-104+115+129 (in Chinese). [10] 陈 旭,李绍纯,孟书灵,等.复合矿物掺合料对水泥胶砂性能和强度的影响研究[J].混凝土,2018(10):102-105+114. CHEN X, LI S C, MENG S L, et al. Influence of compound mineral admixtures on the properties and strength of cement mortar[J]. Concrete, 2018(10): 102-105+114 (in Chinese). [11] 何鼎辉,李闯民.矿物掺合料对水泥砂浆性能影响试验研究[J].公路,2021,66(4):285-290. HE D H, LI C M. Experimental study on effect of mineral admixtures on properties of cement mortar[J]. Highway, 2021, 66(4): 285-290 (in Chinese). [12] 张鹤译.矿物掺合料对压浆料性能研究[J].水利科学与寒区工程,2020,3(1):29-32. ZHANG H Y. Study on performance of mineral admixture on grouting material[J]. Hydro Science and Cold Zone Engineering, 2020, 3(1): 29-32 (in Chinese). [13] 孙雅珍,程圆圆,丁 敏,等.半柔性路面材料配合比设计及性能研究[J].混凝土,2019(9):124-131. SUN Y Z, CHENG Y Y, DING M, et al. Research on mix design and performance of semi-flexible pavement materials[J]. Concrete, 2019(9): 124-131 (in Chinese). [14] 顾晓燕,李令喜,成志强.半柔性路面水泥基灌浆材料流动性能研究[J].公路,2017,62(7):280-285. GU X Y, LI L X, CHENG Z Q. Research on flow properties of cement-based grouting material of semi-flexible pavement[J]. Highway, 2017, 62(7): 280-285 (in Chinese). [15] ZHANG J P, CAI J, PEI J Z, et al. Formulation and performance comparison of grouting materials for semi-flexible pavement[J]. Construction and Building Materials, 2016, 115: 582-592. [16] MEMON F A, NURUDDIN M F, SHAFIQ N. Effect of silica fume on the fresh and hardened properties of fly ash-based self-compacting geopolymer concrete[J]. International Journal of Minerals, Metallurgy, and Materials, 2013, 20(2): 205-213. [17] YANG T, ZHU H J, ZHANG Z H, et al. Effect of fly ash microsphere on the rheology and microstructure of alkali-activated fly ash/slag pastes[J]. Cement and Concrete Research, 2018, 109: 198-207. [18] DAS S K, MUSTAKIM S M, ADESINA A, et al. Fresh, strength and microstructure properties of geopolymer concrete incorporating lime and silica fume as replacement of fly ash[J]. Journal of Building Engineering, 2020, 32: 101780. [19] 高汉青,于大第,杨晓光,等.水泥基灌浆材料流动性能的研究[J].混凝土,2014(8):104-106. GAO H Q, YU D D, YANG X G, et al. Study on the flow property of cement based grouting material[J]. Concrete, 2014(8): 104-106 (in Chinese). [20] FU C S, GUO R X, LIN Z W, et al. Effect of nanosilica and silica fume on the mechanical properties and microstructure of lightweight engineered cementitious composites[J]. Construction and Building Materials, 2021, 298: 123788. [21] LÜ Q, QIU Q L, ZHENG J, et al. Fractal dimension of concrete incorporating silica fume and its correlations to pore structure, strength and permeability[J]. Construction and Building Materials, 2019, 228: 116986. [22] WANG L, JIN M M, WU Y H, et al. Hydration, shrinkage, pore structure and fractal dimension of silica fume modified low heat Portland cement-based materials[J]. Construction and Building Materials, 2021, 272: 121952. |