Citation: | JIANG Guan-zhao, WU Ai-xiang, WANG Yi-ming. Curing performance of alkali-activated cement–phosphorous slag and its compatibility with sulfur tailings[J]. Chinese Journal of Engineering, 2020, 42(8): 963-971. doi: 10.13374/j.issn2095-9389.2019.12.19.002 |
[1] |
蔣明, 王重華, 黃小鳳, 等. 黃磷爐渣熱態成型資源化過程的二次污染預測. 中南大學學報: 自然科學版, 2016, 47(3):1078
Jiang M, Wang C H, Hang X F, et al. Secondary pollution prediction of recycling process of yellow phosphorus slag by moulding under thermal state. J Central S Univ Sci Technol, 2016, 47(3): 1078
|
[2] |
Chen J S, Zhao B, Wang X M, et al. Cemented backfilling performance of yellow phosphorus slag. Int J Miner Metall Mater, 2010, 17(1): 121 doi: 10.1007/s12613-010-0121-2
|
[3] |
吳一鳴, 張覃, 李龍江. 磷渣對普通硅酸鹽水泥緩凝特性影響的研究. 硅酸鹽通報, 2019, 38(4):1177
Wu Y M, Zhang Q, Li L J. Effect of phosphorus slag on retarding properties of ordinary portland cement. Bull Chin Ceram Soc, 2019, 38(4): 1177
|
[4] |
徐長偉, 杜秋實. 磷渣代砂對水泥基灌漿料性能的影響. 混凝土, 2018(10):85 doi: 10.3969/j.issn.1002-3550.2018.10.021
Xu C W, Du Q S. Influence of phosphorus slag replacing sand on properties of cement-based grouting material. Concrete, 2018(10): 85 doi: 10.3969/j.issn.1002-3550.2018.10.021
|
[5] |
王濤, 宋科鵬, 彭澤斌, 等. 少熟料磷渣基水泥的研究. 硅酸鹽通報, 2019, 38(6):1805
Wang T, Song K P, Peng Z B, et al. Experiment study of low-clinker phosphorus slag based cement. Bull Chin Ceram Soc, 2019, 38(6): 1805
|
[6] |
朱麗蘋. 石灰改性磷渣基膠凝材料的試驗研究. 非金屬礦, 2019, 42(4):28 doi: 10.3969/j.issn.1000-8098.2019.04.008
Zhu L P. Experimental study on modified phosphorous slag based cementing material with lime. Non-Metallic Mines, 2019, 42(4): 28 doi: 10.3969/j.issn.1000-8098.2019.04.008
|
[7] |
彭艷周, 張俊, 徐港, 等. 快硬早強磷渣基膠凝材料的制備及其微觀結構研究. 三峽大學學報: 自然科學版, 2015, 37(6):15
Peng Y Z, Zhang J, Xu G, et al. Preparation and microstructure of phosphorous slag-based cementitious materials with high early strength. J China Three Gorges Univ Nat Sci, 2015, 37(6): 15
|
[8] |
陳霞, 楊華全, 張建峰, 等. 磷渣粉的火山灰活性激發及分析. 混凝土, 2015(10):82 doi: 10.3969/j.issn.1002-3550.2015.10.021
Chen X, Yang H Q, Zhang J F, et al. Pozzolanic activation and analysis of phosphorus slag powder. Concrete, 2015(10): 82 doi: 10.3969/j.issn.1002-3550.2015.10.021
|
[9] |
陳霞, 楊華全, 石妍, 等. 磷渣粉水泥基復合膠凝體系的水化特性. 建筑材料學報, 2016, 19(4):619 doi: 10.3969/j.issn.1007-9629.2016.04.002
Chen X, Yang H Q, Shi Y, et al. Hydration characteristics of cement-based materials with incorporation of phosphorus slag powder. J Build Mater, 2016, 19(4): 619 doi: 10.3969/j.issn.1007-9629.2016.04.002
|
[10] |
程麟, 朱成桂, 盛廣宏. 堿磷渣水泥的力學性能及微觀結構. 硅酸鹽學報, 2006, 34(5):604 doi: 10.3321/j.issn:0454-5648.2006.05.019
Cheng L, Zhu C G, Sheng G H. Mechanical properties and microstructures of alkali-activated phosphorous slag cement. J Chin Ceram Soc, 2006, 34(5): 604 doi: 10.3321/j.issn:0454-5648.2006.05.019
|
[11] |
郝晉高, 郭成洲, 周衛兵, 等. CaO對磷渣硅酸鹽水泥水化硬化影響的試驗研究. 水泥, 2010(11):6 doi: 10.3969/j.issn.1002-9877.2010.11.002
Hao J G, Guo C Z, Zhou W B, et al. Effect of CaO on hydration and hardening of phosphorous slag Portland cement. Cement, 2010(11): 6 doi: 10.3969/j.issn.1002-9877.2010.11.002
|
[12] |
宋軍偉, 方坤河, 劉冬梅, 等. 壓汞測孔評價磷渣?水泥漿體材料孔隙分形特征的試驗. 武漢大學學報: 工學版, 2008, 41(6):41
Song J W, Fang K H, Liu D M, et al. Research on fractal characteristics of phosphate slag?cement paste pore with MIP. Eng J Wuhan Univ, 2008, 41(6): 41
|
[13] |
張敏, 馬倩敏, 郭榮鑫, 等. 磷渣在水泥混凝土中的資源化利用. 硅酸鹽通報, 2019, 38(8):2464
Zhang M, Ma Q M, Guo R X, et al. Utilization of phosphorous slag in cement concrete. Bull Chin Ceram Soc, 2019, 38(8): 2464
|
[14] |
許毓海. 尾砂中硫化物對充填體質量影響研究. 礦業研究與開發, 2009(5):4
Xu Y H. Study on influence of sulphide in tailings on quality of backfill. Min Res Dev, 2009(5): 4
|
[15] |
Kesimal A, Yilmaz E, Ercikdi B. Evaluation of paste backfill mixtures consisting of sulphide-rich mill tailings and varying cement contents. Cem Concr Res, 2004, 34(10): 1817 doi: 10.1016/j.cemconres.2004.01.018
|
[16] |
姜關照, 吳愛祥, 李紅, 等. 含硫尾砂充填體長期強度性能及其影響因素. 中南大學學報: 自然科學版, 2018, 49(6):1504
Jiang G Z, Wu A X, Li H, et al. Long-term strength performance of sulfur tailings filling and its affecting factors. J Central S Univ Sci Technol, 2018, 49(6): 1504
|
[17] |
姜關照, 吳愛祥, 王貽明, 等. 復合激發劑對銅爐渣活性影響及充填材料制備. 工程科學學報, 2017, 39(9):1305
Jiang G Z, Wu A X, Wang Y M, et al. Effect of compound activator on copper slag activity and preparation of filling materials. Chin J Eng, 2017, 39(9): 1305
|
[18] |
陳明, 孫振平, 劉建山. 磷渣活性激發方法及機理研究進展. 材料導報, 2013, 27(21):112
Chen M, Sun Z P, Liu J S. State of the art review on activating techniques and mechanism of phosphorus slag. Mater Rev, 2013, 27(21): 112
|
[19] |
徐彬, 蒲心誠. 固態堿組分堿礦渣水泥抗硫酸鹽性能研究. 中國建材科技, 1997(5):11
Xu B, Pu X C. Study on sulfate-resistance property of solid alkaline as cement. China Build Mater Sci Technol, 1997(5): 11
|
[20] |
張曉佳. 弱堿環境下硫酸鹽侵蝕水泥石中C−S−H凝膠結構的形成與演變[學位論文]. 合肥: 安徽建筑大學, 2019
Zhang X J. The Microstructure Formation and Evolution of C−S−H Gel in Cement Paste under the Attack of Sulfate in Weak Alkaline[Dissertation]. Hefei: Anhui Jianzhu University, 2019
|
[21] |
賀行洋, 鄭正旗, 蘇英, 等. 電石渣激發磷渣?礦渣?水泥復合膠凝材料的性能研究. 硅酸鹽通報, 2019, 38(3):889
He X Y, Zheng Z Q, Su Y, et al. Study on the properties of phosphorous slag-blast furnace slag-cement composite cementitious materials activated by acetylene slag. Bull Chin Ceram Soc, 2019, 38(3): 889
|
[22] |
劉進, 何偉, 王棟民. 蒸養條件下水泥-磷渣復合膠凝材料的水化產物的長齡期特征. 電子顯微學報, 2017, 36(6):571 doi: 10.3969/j.issn.1000-6281.2017.06.009
Liu J, He W, Wang D M. Long-term characteristics of the hydration product of cement-phosphorus slag composite binder under steam curing condition. J Chin Electron Microsc Soc, 2017, 36(6): 571 doi: 10.3969/j.issn.1000-6281.2017.06.009
|
[23] |
Song H, Chen J K, Jiang J Y. An internal expansive stress model of concrete under sulfate attack. Acta Mech Solida Sin, 2016, 29(6): 610 doi: 10.1016/S0894-9166(16)30331-7
|
[24] |
劉浪, 朱超, 陳國龍, 等. 微觀尺度下含硫尾砂膠結充填體侵蝕機理. 西安科技大學學報, 2018, 38(4):553
Liu L, Zhu C, Chen G L, et al. Erosion mechanism of sulfur-bearing tailings in micro-scale. J Xi’an Univ Sci Technol, 2018, 38(4): 553
|
[25] |
劉仍光, 閻培渝. 水泥?礦渣復合膠凝材料中礦渣的水化特性. 硅酸鹽學報, 2012, 40(8):1112
Liu R G, Yan P Y. Hydration characteristics of slag in cement-slag complex binder. J Chin Ceram Soc, 2012, 40(8): 1112
|