[1] DU T, WANG D M, BAI Y J, et al. Optimizing the formulation of coal gangue planting substrate using wastes: the sustainability of coal mine ecological restoration[J]. Ecological Engineering, 2020, 143: 105669.
[2] JABLOŃSKA B, KITYK A V, BUSCH M, et al. The structural and surface properties of natural and modified coal gangue[J]. Journal of Environmental Management, 2017, 190: 80-90.
[3] 中华人民共和国国家发展和改革委员会, 中华人民共和国科学技术部, 中华人民共和国工业和信息化部, 等. 煤矸石综合利用管理办法[J]. 中华人民共和国国务院公报, 2015(7): 31-34.
National Development and Reform Commission of the People's Republic of China, Ministry of Science and Technology of the People's Republic of China, Ministry of Industry and Information Technology of the People's Republic of China, et al. Management measures for comprehensive utilization of coal gangue[J]. Gazette of the State Council of the People's Republic of China, 2015(7): 31-34 (in Chinese).
[4] 王爱国, 朱愿愿, 徐海燕, 等. 混凝土用煤矸石骨料的研究进展[J]. 硅酸盐通报, 2019, 38(7): 2076-2086.
WANG A G, ZHU Y Y, XU H Y, et al. Research progress on coal gangue aggregate for concrete[J]. Bulletin of the Chinese Ceramic Society, 2019, 38(7): 2076-2086 (in Chinese).
[5] 陈 岩. 基于多元化应用的煤矸石高效破碎分选技术研究[D]. 武汉: 武汉理工大学, 2015.
CHEN Y. Research on efficient crushing and separating technology of coal gangue based on diversified applications[D]. Wuhan: Wuhan University of Technology, 2015 (in Chinese).
[6] WANG Z S, ZHAO N. Properties of steel fiber reinforced coal gangue coarse aggregate concrete[J]. Wuhan University Journal of Natural Sciences, 2014, 19(3): 262-268.
[7] 何文波. 煤矸石粗骨料混凝土性能研究[D]. 泰安: 山东农业大学, 2017.
HE W B. Study on properties of coal gangue coarse aggregate concrete[D]. Taian: Shandong Agricultural University, 2017 (in Chinese).
[8] WANG J M, QIN Q, HU S J, et al. A concrete material with waste coal gangue and fly ash used for farmland drainage in high groundwater level areas[J]. Journal of Cleaner Production, 2016, 112: 631-638.
[9] 朱红光, 霍青杰, 倪亚东, 等. 煤矸石细集料-矿渣混凝土抗压强度与抗冻性能研究[J]. 材料导报, 2021, 35(22): 22085-22091.
ZHU H G, HUO Q J, NI Y D, et al. Study on compressive strength and frost resistance of coal gangue fine aggregate-slag cement-based concrete[J]. Materials Reports, 2021, 35(22): 22085-22091 (in Chinese).
[10] 王 晴, 黄成洋, 刘 锁, 等. 煤矸石取代粗集料的混凝土抗冻性的研究[J]. 混凝土, 2015(9): 77-79.
WANG Q, HUANG C Y, LIU S, et al. Research on frost resistance of the coal gangue instead of coarse aggregate concrete[J]. Concrete, 2015(9): 77-79 (in Chinese).
[11] 马宏强, 易 成, 朱红光, 等. 煤矸石集料混凝土抗压强度及耐久性能能[J]. 材料导报, 2018, 32(14): 2390-2395.
MA H Q, YI C, ZHU H G, et al. Compressive strength and durability of coal gangue aggregate concrete[J]. Materials Review, 2018, 32(14): 2390-2395 (in Chinese).
[12] 曹鑫铖, 金宝宏, 侯玉飞. 包浆再生粗骨料对自密实混凝土力学性能及抗冻性的影响[J]. 土木与环境工程学报(中英文), 2022, 44(1): 149-159.
CAO X C, JIN B H, HOU Y F. Experimental study on the effect of the wrapped slurry recycled coarse aggregate on the mechanical properties and frost resistance of self-compacting concrete[J]. Journal of Civil and Environmental Engineering, 2022, 44(1): 149-159 (in Chinese).
[13] 刘庆东, 张信龙, 秦文萍, 等. 废弃砖再生骨料的强化及其应用研究[J]. 混凝土, 2018(2): 42-45.
LIU Q D, ZHANG X L, QIN W P, et al. Study on strengthening and application of recycled aggregate of discarded brick[J]. Concrete, 2018(2): 42-45 (in Chinese).
[14] SUN K K, ZHOU X M, GONG C C, et al. Influence of paste thickness on coated aggregates on properties of high-density sulphoaluminate cement concrete[J]. Construction and Building Materials, 2016, 115: 125-131.
[15] 易 成, 马宏强, 朱红光, 等. 煤矸石粗集料混凝土抗碳化性能研究[J]. 建筑材料学报, 2017, 20(5): 787-793.
YI C, MA H Q, ZHU H G, et al. Investigation on anti-carbonation performance of coal gangue coarse aggregate concrete[J]. Journal of Building Materials, 2017, 20(5): 787-793 (in Chinese).
[16] 崔正龙, 路沙沙, 汪振双. 再生骨料特性对再生混凝土强度和碳化性能的影响[J]. 建筑材料学报, 2012, 15(2): 264-267.
CUI Z L, LU S S, WANG Z S. Influence of recycled aggregate on strength and anti-carbonation properties of recycled aggregate concrete[J]. Journal of Building Materials, 2012, 15(2): 264-267 (in Chinese).
[17] 顾 云, 张 彬. 煤矸石集料混凝土工作与力学性能研究[J]. 混凝土, 2019(7): 71-73.
GU Y, ZHANG B. Research of working and mechanical properties of coal gangue aggregate concrete[J]. Concrete, 2019(7): 71-73 (in Chinese).
[18] DU X Q, LI Z L, HAN J J, et al. Effect of different humidity-controlling modes on microstructure and compressive behavior of ordinary concrete[J]. Journal of Materials in Civil Engineering, 2020, 32(1): 04019337.
[19] LEI B, LI W G, TANG Z, et al. Durability of recycled aggregate concrete under coupling mechanical loading and freeze-thaw cycle in salt-solution[J]. Construction and Building Materials, 2018, 163: 840-849.
[20] ÖZBEK A. Investigation of the effects of wetting-drying and freezing-thawing cycles on some physical and mechanical properties of selected ignimbrites[J]. Bulletin of Engineering Geology and the Environment, 2014, 73(2): 595-609.
[21] 朱宝龙, 李晓宁, 巫锡勇, 等. 黑色页岩遇水膨胀微观特征试验研究[J]. 岩石力学与工程学报, 2015, 34(s2): 3896-3905.
ZHU B L, LI X N, WU X Y, et al. Experimental study of micro-characteristics of swelling for black shale under influence of water[J]. Chinese Journal of Rock Mechanics and Engineering, 2015, 34(s2): 3896-3905 (in Chinese).
[22] 刘 镇, 周翠英, 朱凤贤, 等. 软岩饱水软化过程微观结构演化的临界判据[J]. 岩土力学, 2011, 32(3): 661-666.
LIU Z, ZHOU C Y, ZHU F X, et al. Critical criterion for microstructure evolution of soft rocks in softening process[J]. Rock and Soil Mechanics, 2011, 32(3): 661-666 (in Chinese). |