CZARNECKI L. The status of polymer concrete [J]. Concr Int, 1985, 7(7): 47–53.
[2]
VAN GEMERT D, CZARNECKI L, BARE? R. Basis for selection of PC and PCC for concrete repair [J]. Int J Cem Compos Light Concr, 1988, 10(2): 121–123.
[3]
PUTERMAN M,MALORNY W. Some doubts and ideas on the microstructure formation of PCC [C] //9th International Congress on Polymers in Concrete, Bologna. Italy, 1998: 165–178.
[4]
BEELDENS A, VAN GEMERT D, OHAMA Y, et al. Integrated model of structure formation in polymer modi?ed concrete [C] //11th International Congress on the Chemistry of Cement. Durban, South Africa, 2003: 11–16.
ZHONG Shiyun, YUAN Hua. Application of Polymers in Concrete (in Chinese). Beijing: Chemical Industry Press, 2003: 130–142.
[7]
OHAMA Y.Study on properties and mix proportioning of polymer-modified mortars for buildings[R] .Report of the Building Research Institute,Tokyo,1973,65:p658.
[8]
BEELDENS A, VAN GEMERT D, SCHORN H, et al. From microstructure to macrostructure: an integrated model of structure formation in polymer-modified concrete [J]. Mater Struct, 2005, 38(280): 601–607.
[9]
VAN GEMERT D, BEELDENS A. Evolution in modeling microstructure formation in polymer-cement concrete [C] //7th Asian Symposium on Polymers in Concrete, Istanbul, Turkey, 2012: 59–73.
[10]
BULLARD J W, JENNINGS H M, LIVINGSTON R A, et al. Mechanisms of cement hydration [J]. Cem Concr Res, 2011, 41(12): 1208–1223.
[11]
VAN VLIET K, PELLENQ R, BUEHLER M J, et al. Set in stone? A perspective on the concrete sustainability challenge [J]. MRS Bull, 2012, 37: 395–402.
[12]
STARK J. Recent advances in the ?eld of cement hydration and microstructure analysis [J]. Cem Concr Res, 2011, 41(7): 666–678.
[13]
MAEKAWA K, ISHIDA T, KISHI T. Multi-scale modeling of concrete performance: integrated material and structural mechanics [J]. J Adv Concr Tech, 2003, 1(2): 91–126.
??? WANG Peiming, PENG Yu, LIU Xianping. J Chin Ceram Soc, 2013, 41(8): 1116–1123.
[16]
SKIBSTED J, HALL C. Characterization of cement minerals, cements and their reaction products at the atomic and nanoscale level [C] //12th International Congress on the Chemistry of Cement, Montréal. Canada, 2007: 1–44.
[17]
GRETZ M, PLANK J. An ESEM investigation of latex film formation in cement pore solution [J]. Cem Concr Res, 2011, 41(2): 184–190.
[18]
PAVLITSCHEK T, JIN Y, PLANK J. Film formation of a non-ionic ethylene-vinyl acetate latex dispersion in cement pore solution [C] //14th International Congress on Polymers in Concrete, Shanghai, China, 2013: 316–321.
[19]
王培铭. 商品砂浆 [M] 北京:化学工业出版社, 2007: 26–32.
[20]
WANG Peiming. Commercial Mortar (in Chinese). Beijing: Chemical Industry Press, 2007: 26–32.
[21]
FELTON L A. Mechanisms of polymeric ?lm formation [J]. Int J Pharmaceut, 2013, http://dx.doi.org/10.1016/j.ijpharm.2012.12.027
[22]
PETER U, SARI M, DUONG N. Impact of latex physico-chemical properties on mortar performances: an application case study [C] //GDCh–Fachgruppen Bauchemie ed. Tagung Bauchemie: monographie band 36, Karlsruhe, Germany: GDCh–Fachgruppen Bauchemie, 2006: 87–100.
[23]
ODLER I, LIANG N X. Properties and development of the microstructure in cement pastes modified by a styrene-butadiene co-polymer [J]. Adv Cem Res, 2003, 15(1): 1–8.
[24]
UKRAINCZYK N, ROGINA A. Styrene–butadiene latex modi?ed calcium aluminate cement mortar [J]. Cem Concr Compos, 2013, 41: 16–23.
[25]
VAN TIEN P. Relationship between the adhesive properties and rheological behaviors of fresh mortars [D]. Cachan: Ecole Normale Superieure de Cachan, 2012.
[26]
JENNI A, HOLZER L, ZURBRIGGEN R, et al. Influence of polymers on microstructures and adhesive strength of cementitious tile adhesive mortars [J]. Cem Concr Res, 2005, 35(1): 35–50.
[27]
DE GASPARO A, HERWEGH M, ZURBRIGGEN R, et al. Quantitative distribution patterns of additives in self-leveling flooring compounds(underlayments) as function of application, formation and climatic conditions [J]. Cem Concr Res, 2009, 39(4): 313–323.
[28]
VAN GEMERT D. Factors influencing durability of bond of ceramic tiles in swimming pools [C] //7th Asian Symposium on Polymers in Concrete, Istanbul, Turkey, 2012: 165–174.
[29]
YANG T H. AFM study of the interactions between moisture and the surface of cementitious materials [D]. Zürich: Eidgenossische Technische Hochschule Zürich, 2006.
[30]
BǘHLER T H, ZURBRIGGEN R, PIELES U, et al. Dynamics of early skin formation of tiling mortars investigated by microscopy and diffuse reflectance infrared Fourier transformed spectroscopy [J]. Cem Concr Compos, 2013, 37: 161–170.
[31]
PETIT J Y, WIRQUIN E. Evaluation of various cellulose ethers performance in ceramic tile adhesive mortars [J]. Int J Adhes Adhes, 2013, 40: 202–209.
??? ZHANG Guofang, WANG Peiming. J Build Mater (in Chinese), 2013, 16(1): 111–114.
[36]
ZHANG G F, WANG P M. Pore structure of hardened cement paste modified with hydroxyethyl methyl cellulose [C] //6th Asian Symposium on Polymers in Concrete, Shanghai, China, 2009: 281–288.
[37]
KNAPEN E. Microstructure formation in cement mortars modified with water-soluble polymers [D]. Leuven: Katholieke Universiteit Leuven, 2007.
??? ZHANG Guofang, WANG Peiming. J Build Mater (in Chinese), 2010, 13(5): 573–577.
[40]
ZHONG S Y, LI J M, NI K, et al. In?uences of HPMC on adsorption of styrene-acrylic ester latex particles on cement grains [J]. Constr Build Mater, 2013, 38: 567–574.
WANG Peiming. Bull Chin Ceram Soc (in Chinese), 2005( 5): 136–139.
[43]
POURCHEZ J, RUOT B, DEBAYLE J, et al. Some aspects of cellulose ethers in?uence on water transport and porous structure of cement-based materials [J]. Cem Concr Res, 2010, 40(2): 242–252.
[44]
BüLICHEN D, KAINZ J, PLANK J. Working mechanism of methyl hydroxyethyl cellulose (MHEC) as water retention agent [J]. Cem Concr Res, 2012, 42(7): 953–959.
[45]
KLEMM D, HEUBLEIN B, FINK H P, et al. Cellulose: faszinierendes biopolymer und nachhaltiger rohstoff [J]. Angew Chem, 2005, 117(22): 3422–3458.
[46]
CZARNECKI L. Concrete-polymer composites:trends shaping the future [J]. Int J Soc Mater Eng Resour, 2007, 15(1): 1–5.
[47]
FOWLER D W. Concrete-polymer composites: Where we are and where we are going [C] //6th Asian Symposium on Polymers in Concrete.Shanghai, China, 2009: 10–15.
[48]
YEON K S, CHOI Y S. Current researches and uses of concrete-polymer composites in Korea [C] //6th Asian Symposium on Polymers in Concrete.Shanghai, China, 2009: 16–21.
[49]
VAN GEMERT D, KNAPEN E. Contribution of C-PC to sustainable construction procedures [C] //13th International Congress on Polymers in Concrete, Funchal-Madeira. Portugal, 2010: 27–36.
[50]
?
[51]
WANG P M, WANG R. Recent research and development of concrete-polymer composites in China [C] //6th Asian Symposium on Polymers in Concrete, Shanghai, China, 2009: 35–43.
[52]
OHAMA Y. Concrete-polymer composites- the past, present and future [C] //13th International Congress on Polymers in Concrete, Funchal-Madeira.Portugal, 2010: 1–13.
[53]
AGUIAR J B, HULUSI OZKUL M, CUNHA S. Report from 13th ICPIC and 7th ASPIC: new trends on concrete-polymer composites [C] //14th International Congress on Polymers in Concrete. Shanghai, China, 2013: 45–56.
[54]
STEINBERG M, KUKACKA L, COLOMBO P,et al. Concrete-polymer materials, first topical report [R]. BNL 50134(T-509) and USBR General Report No.41, New York: Brookhaven National Laboratory, 1968.
[55]
DINGLEY R G. The structure and properties of hydraulic cement paste modified by polymer latex [D]. Southampton: University of Southampton, 1974.
[56]
OHAMA Y. Principle of latex modification and some typical properties of latex-modified mortars and concretes [J]. ACI Mater J, 1987, 84(6): 511–518.
[57]
KONIETZKO A. Polymerspezifische auswirkungen auf das tragverhalten modifizierter zementgebundener betone (PCC) [D]. Braunschweig: Technische Universit?t Braunschweig, 1988.
[58]
VAN GEMERT D, CZARNECKI L, MAULTSCH M, et al. Cement concrete and concrete–polymer composites: two merging worlds: a report from 11th ICPIC Congress in Berlin, 2004 [J]. Cem Concr Compos, 2005, 27(9–10): 926–933.
[59]
KONAR B B, PARIYA T K. Study of polymer-cement composite containing portland cement and aqueous poly (methyl methacrylate) latex polymer by Fourier-Transform Infrared (FT-IR) spectroscopy [J]. J Macromol Sci, Part A: Pure Appl Chem, 2009, 46(8): 802–806.
[60]
PIQUE T M, BALZAMO H M, VAZQUEZ A. Hydration evaluation of portland cement modified with polyvinyl alcohol and nano clay [C]//13th International Congress on Polymers in Concrete. Funchal-Madeira, Portugal, 2010: 101–108.
[61]
SILVA D A, ROMAN H R, GLEIZE P J P. Evidences of chemical interaction between EVA and hydrating Portland cement [J]. Cem Concr Res, 2002, 32(9): 1383–1390.
??? ZHANG Guofang, WANG Peiming. J Build Mater (in Chinese), 2010, 13(2): 143–149.
[64]
BIER T A, BAJRAMI A. Influence of polymer addition on early microstructure development in ternary binders [C] //7th Asian Symposium on Polymers in Concrete. Istanbul, Turkey, 2012: 117–124.
[65]
CHOUGNET A, AUDIBERT HAYET A, MOAN M, et al. Cement-polymer composites for oilwell cementing [J]. Oil Gas Sci Tech Rev IFP, 2009, 64(5): 583–595.
[66]
WANG R, LI X G, WANG P M. Influence of polymer on cement hydration in SBR-modified cement pastes [J]. Cem Concr Res, 2006, 36(9): 1744–1751.
[67]
MüLLER I, SCHWEIZER D, HOHN W, et al. Influence of cellulose ethers on the kinetics of early portland cement hydration [C] //GDCh–Fachgruppen Bauchemie ed. Tagung Bauchemie: monographie band 36. Karlsruhe, Germany: GDCh–Fachgruppen Bauchemie, 2006: 3–10.
[68]
POURCHEZ J, GROSSEAU P, RUOT B. Changes in C3S hydration in the presence of cellulose ethers [J]. Cem Concr Res, 2010, 40(2): 179–188.
[69]
JENNI A, ZURBRIGGEN R, HOLZER L, et al. Changes in microstructures and physical properties of polymer-modified mortars during wet storage [J]. Cem Concr Res, 2006, 36(1): 79–90.
[70]
ZHANG Z L, WANG P M, WU J G. Study of the mechanical damping behavior of SBR-modi?ed cement pastes by dynamic mechanical analyzer [J]. J Therm Anal Calorim, doi: 10.1007/s10973-013-3165-5.
[71]
PAREEK S N, OHAMA Y, DEMURA K. Adhesion of bonded mortar to polymer-cement paste coated mortar substrates [C] //MASO J C ed. Interfaces in Cementitious Composites: Proceedings of the RILEM International Conference. Taylor & Francis e-Library, 2005: 117–125.
[72]
BODE K A. Aspekte der koh?siven und adh?siven eigenschaften von PCC [D]. Weimar: Bauhaus Universit?t, 2009.
[73]
WANG R, LACKNER R, WANG P M. Effect of styrene-butadiene rubber latex on mechanical properties of cementitious materials highlighted by means of nanoindentation [J]. Strain, 2011, 47(2): 117–126.
[74]
SCHORN H, BUTLER M, HEMPEL S. Polymers as microcrack stopper in concrete observed in ESEM [C] //11th International Congress on Polymers in Concrete. Berlin, Germany, 2004: 11–18.
[75]
MANSUR A A P, DO NASCIMENTO O L, MANSUR H S. Physico-chemical characterization of EVA-modified mortar and porcelain [J]. Cem Concr Res, 2009, 39(12): 1199–1208.
[76]
WETZEL A, HERWEGH M, ZUBRIGGEN R, et al. In?uence of shrinkage and water transport mechanisms on microstructure and crack formation of tile adhesive mortars [J]. Cem Concr Res, 2012, 42(1): 39–50.
[77]
SILVA M A G, SILVA Z C G. Degradation of mechanical characteristics of some polymeric mortars due to aging [J]. ACI Mater J, 2007, 104(4): 337–343.
[78]
WETZEL A, ZUBRIGGEN R, HERWEGH M. Spatially resolved evolution of adhesion properties of large porcelain tiles [J]. Cem Concr Compos, 2010, 32(5): 327–338.
[79]
MA H Y, TIAN Y, LI Z J. Interactions between organic and inorganic phases in PA- and PU/PA-modified-cement-based materials [J]. J Mater Civ Eng, 2011, 23(10): 1412–1421.
[80]
SU Z. Microstructure of polymer cement concrete [D]. Delft: Technische Universiteit Delft, 1995.
[81]
PLANK J, GRETZ M. Study on the interaction between anionic and cationic latex particles and Portland cement [J]. Colloids and Surfaces A: Physicochem Eng Asp, 2008, 330(2–3): 227–233.
[82]
MERLIN F, GUITOUNI H, MOUHOUBI H, et al. Adsorption and heterocoagulation of nonionic surfactants and latex particles on cement hydrates [J]. J Colloid Interface Sci, 2005, 281(1): 1–10.
[83]
SHI X X, WANG R, WANG P M. Dispersion and absorption of SBR latex in the system of mono-dispersed cement particles in water [C] //14th International Congress on Polymers in Concrete, Shanghai, China, 2013: 347–353.
[84]
JUILLAND P. Early hydration of cementitious systems [D]. Lausanne: école Polytechnique Fédérale de Lausanne, 2009.
[85]
MASOERO E, DEL GADO E, PELLENQ R J M, et al. Nanostructure and nanomechanics of cement: polydisperse colloidal packing [J]. Phys Rev Lett, 2012, 109(15): 155503(4).
[86]
PLASSARD C, LESNIEWSKA E, POCHARD I, et al. Nanoscale experimental investigation of particle interactions at the origin of the cohesion of cement [J]. Langmuir, 2005, 21(16): 7263–7270.
[87]
YOUSSEF M, PELLENQ R J M, YILDIZ B. Glassy nature of water in an ultraconfining disordered material: the case of calcium-silicate-hydrate [J]. J Am Chem Soc, 2011, 133(8): 2499–2510.
??? YANG Nanru. J Build Mater (in Chinese), 2012, 15(1): 1–5.
[90]
OLARU A M, WEICHOLD O, ADAMS A. The hydration of reactive cement-in-polymer dispersions studied by nuclear magnetic resonance [J]. Cem Concr Res, 2011, 41(11): 1123–1129.
[91]
OLARU A M, BL?MICH B, ADAMS A. Water transport in cement-in-polymer dispersions at variable temperature studied by magnetic resonance imaging [J]. Cem Concr Res, 2013, 44: 55–68.
[92]
THOMAS J J, ALLEN A J, JENNINGS H M. Structural changes to the calcium-silicate-hydrate gel phase of hydrated cement with age, drying, and resaturation [J]. J Am Ceram Soc, 2008, 91(10): 3362–3369.
[93]
DIMMIG OSBURG A. New model for the formation of the microstructure of polymer-modified mortar [J]. Betonwerk Fertigteil Tech, 2005, 71(10): 26–36.
[94]
SAKAI E, OKUDAIRA R, SUGIYAMA T, et al. Adsorption of polymer particles on cement in polymer modified cement [C] //12th International Congress on Polymers in Concrete. Chuncheon, Korea, 2007: 233–238.
[95]
KAUFMANN J, WINNEFELD F, ZURBRIGGEN R. Polymer dispersions and their interaction with mortar constituents and ceramic tile surfaces studied by zeta-potential measurements and atomic force microscopy [J]. Cem Concr Compos, 2012, 34(5): 604–611.