[1] Singh N B,Middendorf B.Calcium sulphate hemihydrate hydration leading to gypsum crystallization [J].Prog Cryst Growth Charact Mater,2007,53(1):57-77. [2] 柏玉婷,李国忠.适用于脱硫建筑石膏的减水剂[J].墙材革新与建筑节能,2009(5):35-37. [3] 赵帅,田颖,李国忠.掺加外加剂对氟石膏的改性研究[J].有机氟工业,2008(1):13-16. [4] 王文平,唐家元,朱国军,等.木质素磺酸盐改性聚羧酸减水剂的合成[J].新型建筑材料,2012(1):58-61. [5] 潘伟,王培铭.缓凝剂和减水剂作用于半水石膏水化硬化的研究进展[J].材料导报,2011,25(7):91-96. [6] Peng J H,Qu J D,Zhang J X,et al.Adsorption characteristics of water-reducing agents on gypsum surface and its effect on the rheology of gypsum plaster [J].Cem Concr Res,2005,35(3):527-531. [7] Pan W,Wang P.Effect of compounding of sodium tripolyphosphate and super plasticizers on the hydration of alpha-calcium sulfate hemihydrate [J].Journal of Wuhan University of Technology (Mater Sci Ed),2011,26(4):737-744. [8] 彭家惠,瞿金东,张建新,等.FDN减水剂对建筑石膏水化和硬化体结构的影响[J].建筑材料学报,2007,10(1):14-19. [9] Hekal E E,Kishar E A.Effect of sodium salt of naphthalene-formaldehyde polycondensate on ettringite formation [J].Cem Concr Res,1999,29(10):1535-1540. [10] 吴书泓,罗朝辉,孙振鸢.利用C-13NMR探讨影响MF树脂贮存稳定性的因素[J].木材工业,1998,12(4):8-13. [11] Guan B,Ye Q,Zhang J,et al.Interaction between α-calcium sulfate hemihydrate and superplasticizer from the point of adsorption characteristics,hydration and hardening process [J].Cem Concr Res,2010,40(2):253-259. [12] Yilmaz V T,Glasser F P.Early hydration of tricalcium aluminate-gypsum mixtures in the presence of sulfonated melamine formaldehyde superplasticizer [J].Cem Concr Res,1991,21:765-776. [13] 徐正林.氨基磺酸系高效减水剂的合成及其应用技术研究[J].新型建筑材料,2003(5):44-45. [14] 冯乃谦.氨基磺酸系高效减水剂的研制及其混凝土的特性[J].混凝土与水泥制品,2000(2):5-8. [15] 邱学青,蒋新元,欧阳新平.氨基磺酸系高效减水剂的研究现状与发展方向[J].化工进展,2003,22(4):336-340. [16] 李崇智,章银祥,师海霞.高性能AS减水剂的性能研究[J].化学建材,1999(1):26-27. [17] 蒋新元,邱学青,欧阳新平,等.氨基磺酸系高效减水剂表面与分散性能研究[J].混凝土,2004(4):42-44. [18] 杜晨溪,赵志曼,李帅,等.氨基磺酸掺量对磷建筑石膏抗压强度的影响[J].非金属矿,2015,38(5):21-22. [19] 苏瑜,庞浩,蒋冰艳,等.聚羧酸系混凝土减水剂的研究进展及发展趋势[J].现代化工,2011,31(4):14-17. [20] Palacios M,Puertas F.Effect of superplasticizer and shrinkage-reducing admixtures on alkali-activated slag pastes and mortars [J].Cem Concr Res,2005,35(7):1358-1367. [21] 惠泊宁,刘东辉,李桦军.强度增强型石膏专用聚羧酸系高性能减水剂[J].硅酸盐通报,2013,32(2):242-247. [22] 逄建军,王浩,张力冉,等.线型聚羧酸减水剂对建筑石膏性能的影响[J].商品混凝土,2014(3):39-42. [23] 魏桂芳,彭家惠,陈燕,等.聚羧酸减水剂及聚丙烯纤维对陶瓷模具石膏性能的影响[J].硅酸盐通报,2012,31(6):1403-1408. [24] 吴华春.大分子添加剂对模具石膏性能的作用及其机制初探[D].无锡:江南大学,2014. [25] 周平萍.聚醚聚磺(硫)酸钠的分子设计、合成及其对模具石膏性能的影响[D].无锡:江南大学,2016. [26] Martlas C,Joliff Y,Nait-ali B,et al.A new composite based on gypsum matrix and mineral additives:hydration process of the matrix and thermal properties at room temperature [J].Thermochim Acta,2013,567:15-26. [27] Gutierrez-Gonzalez S,Alonso M M,Gadea J,et al.Rheological behaviour of gypsum plaster pastes with polyamide powder wastes [J].Constr Build Mater,2013,38:407-412. [28] Baltar L M,Baltar C A M,Benachour M.Effect of carboxymethylcellulose on gypsum rehydration process [J].Int J Miner Process,2013,125:5-9. [29] Colak A.Physical and mechanical properties of polymer-plaster composites [J].Mater Lett,2006,60(16):1977-1982. [30] Nilles V,Plank J.Study of the retarding mechanism of linear sodium polyphosphates on alpha-calcium sulfate hemihydrate [J].Cem Concr Res,2012,42(5):736-744. [31] 刘进超,彭家惠.聚羧酸减水剂对α-半水脱硫石膏的水化进程及其硬化体微结构的影响[J].硅酸盐通报,2012,31(4):939-942. [32] 彭家惠,陈明凤,瞿金东,等.柠檬酸对建筑石膏水化的影响及其机理研究[J].建筑材料学报,2005,8(1):94-99. [33] 丰霞.β型模具石膏的增强研究[D].南宁:广西大学,2007. [34] Cao K,Zhou Y,Liu G,et al.Preparation and properties of a polyether-based polycarboxylate as an antiscalant for gypsum [J].J Appl Polym Sci,2014,131(8):1-9. [35] Wu H C,Xia Y M,Hu X Y,et al.Improvement on mechanical strength and water absorption of gypsum modeling material with synthetic polymers [J].Ceram Int,2014,40(9):14899-14906. [36] Garcia-Diaz I,Lopez-Coto I,Bolivar J P,et al.Stabilization of phosphogypsum by sulfur polymer [J].J Mater Civ Eng,2013,25(8):1041-1049. |