[1]
X.M. Kong, Q.H. Li, Properties and microstructure of polymer modified mortar based on different acrylate latexes, Journal of the Chinese ceramic society. 37 (2009) 108-114.
Google Scholar
[2]
R.Wang, P.M. Wang, Hydration of cement in the presence of SBR dispersion and powder, Key Engineering Materials. 466 (2011) 57-63.
DOI: 10.4028/www.scientific.net/kem.466.57
Google Scholar
[3]
R. Wang, P.M. Wang, Hydration of cement in the presence of SAE dispersion and powder, Proceedings of the 7th Asian Symposium on Polymers in Concrete, Istanbul, Turkey. (2012) 29-38.
Google Scholar
[4]
R. Wang, P.M. Wang, Effect of styrene-butadiene rubber latex/powder on cement hydrates, Journal of the Chinese ceramic society. 36 (2008) 912-926.
Google Scholar
[5]
R. Wang, X.G. Li, P.M. Wang, Influence of polymer on cement hydration in SBR-modified cement pastes, Cement and Concrete Research. 36 (2006) 1744–1751.
DOI: 10.1016/j.cemconres.2006.05.020
Google Scholar
[6]
R. Wang, P.M. Wang, Formation of hydrates of calcium aluminates in cement pastes with different dosages of SBR powder, Construction and Building Materials. 25 (2011) 736-741
DOI: 10.1016/j.conbuildmat.2010.07.013
Google Scholar
[7]
G.F. Zhang, P.M. Wang, Effects of vinyl redispersible polymer on cement hydration products, Journal of Building Materials. 13 (2010) 143-149.
Google Scholar
[8]
R. Wang, L.J. Yao, P.M. Wang, Mechanism analysis and effect of styrene-acrylate copolymer powder on cement hydrates, Construction and Building Materials (2013)
DOI: 10.1016/j.conbuildmat.2012.12.028
Google Scholar
[9]
P.M. Wang, E.G. Liu, R. Wang, Study on properties of cement mortar modified by styrene-acrylic ester redispersible powder, Proceedings of the 6th Asian Symposium on Polymers in Concrete. Shanghai, China. (2009) 514-522.
Google Scholar
[10]
J.M. Li, S.Y. Zhong, C.C. Zhang, Influence of superplasticiser and mixing procedure on properties of styrene-acrylic ester latex modified mortars, Magazine of Concrete Research. 64 (2012) 411-417.
DOI: 10.1680/macr.10.00170
Google Scholar
[11]
Y. Mei, Z. Li, N. Liang et al., Effect and mechanism of fiber and polymer on the early shrinkage of cement mortar, Journal of Chongqing Jiaotong University (Natural Science). 27 (2008) 408-412.
Google Scholar
[12]
Y. Mei, Z. Li, P. Wang et al., Effect and mechanism of styrene-butadiene rubber latex on the long term shrinking performance of mortar, Journal of Civil, Architectural & Environmental Engineering. 31 (2009) 142-146.
Google Scholar
[13]
S.Y. Zhong, Effect of fibers on surface water evaporation of polymer-modified mortar, Journal of Building Materials. 13 (2010) 728-732.
Google Scholar
[14]
S.Y. Zhong, J.M. Li, W. Bao, Early water loss in polymer modified mortar with polypropylene fiber added, Journal of Building Materials. 14 (2011) 581-585.
Google Scholar
[15]
R. Wang, P.M. Wang, Function of styrene-acrylic ester copolymer latex in cement mortar, Materials and Structures. 43 (2010) 443–451.
DOI: 10.1617/s11527-009-9501-3
Google Scholar
[16]
P.M. Wang, E.G. Liu, R. Wang, Study on properties of cement mortar modified by styrene-acrylic ester redispersible powder, Proceedings of the 6th Asian Symposium on Polymers in Concrete, Shanghai, China. (2009) 29-30.
Google Scholar
[17]
R. Wang, P.M. Wang, Physical properties of SBR latex-modified mortar under different curing conditions, Journal of the Chinese ceramic society. 37 (2009) 2118-2123.
Google Scholar
[18]
R. Wang, P.M. Wang, Action of redispersible vinyl acetate and versatate copolymer powder in cement mortar, Construction and Building Materials. 25 (2011) 4210–4214.
DOI: 10.1016/j.conbuildmat.2011.04.060
Google Scholar
[19]
R. Wang, P.M. Wang, Y. Peng, Comparison of three characterization methods for flexibility of SBR latex-modified cement mortar, Journal of Building Materials. 13 (2010) 390-395.
Google Scholar
[20]
R. Wang, P.M. Wang, Y. Peng, Comparison of three characterization methods for flexibility of SBR redispersible powder-modified cement mortar, Study and Application of Commercial Mortar, Chemical Industry Press. (2009) 97-102.
Google Scholar
[21]
R. Wang, P.M. Wang, L.J. Yao, Effect of redispersible vinyl acetate and versatate copolymer powder on flexibility of cement mortar, Construction and Building Materials. 27 (2012) 259–262.
DOI: 10.1016/j.conbuildmat.2011.07.050
Google Scholar
[22]
Y.R. Zhang, X.M. Kong, Z.L. Zhang et al., Impermeability of polymer modified mortar based on different acrylate latexes, Study and Application of Commercial Mortar, Chemical Industry Press. (2009) 86-91.
Google Scholar
[23]
Y. Mei, P. Wang, Z. Li, Fracture performance of SBR latex modified cement mortar, Journal of Wuhan University of Technology. 31 (2009) 77-81.
Google Scholar
[24]
Y.J. Mei, P.M. Wang, N.X. Liang et al., Mechanism of the effect of styrene-butadiene latex on the water absorption and carbonization of cement mortar, Journal of Building Materials. 10 (2007) 276-281.
Google Scholar
[25]
D. He, P. Wang, P. Liu et al., Interface bond mechanism of EVA-modified mortar and porcelain tile, Journal of Materials in Civil Engineering.
DOI: 10.1061/(ASCE)MT.1943-5533.0000533
Google Scholar
[26]
P. Wang, E. Liu, Study on properties of styrene-acrylate copolymer powder modified cement mortar, Journal of Building Materials. 12 (2009) 253-258.
Google Scholar
[27]
X.M. Zhou, Y.N. Zhai, Review in applications of construction polymers by BASF, Construction Science and Technology. 16 (2012) 61-63.
Google Scholar
[28]
H.M. Zhu, P.M. Wang, G.F. Zhang, The effects of hydroxyethyl methyl cellulose on the stain and efflorescence properties of polymer-modified cement-based decorative plasters, Study and Application of Commercial Mortar, Chemical Industry Press. (2011) 300-307.
Google Scholar
[29]
L. Zhang, P.M. Wang, H.M. Zhu et al., Influences of slag powder and metakaolin to the performances of cement-based decorative plasters, Study and Application of Commercial Mortar, Chemical Industry Press. (2011) 286-292.
Google Scholar
[30]
R. Wang, L. Wang, P.M. Wang, Influence of cement content on the performance of decorative mortar made with low cement content, Study and Application of Commercial Mortar, Chemical Industry Press. (2011) 281-285.
Google Scholar
[31]
H. Wang, X. Wang, D.J. Sun, Application of acrylic redispersible polymer powder in rigid waterproofing mortar, New Building Materials. 2 (2011) 87-89.
Google Scholar
[32]
Y.H. Li, Application of emulsion powder in cementitious waterproof slurry, Product & Materials. 36 (2008) 54-57.
Google Scholar
[33]
Y. Lu, Modification of polymers on recycled aggregate and recycled aggregate concrete, Ready- mixed Concrete. 3 (2007) 1-4.
Google Scholar
[34]
R. Wang, C. Meyer, Performance of cement mortar made with recycled high impact polystyrene, Cement & Concrete Composites. 34 (2012) 975–981.
DOI: 10.1016/j.cemconcomp.2012.06.014
Google Scholar
[35]
R. Wang, T.F. Zhang, P.M. Wang, Waste printed circuit boards nonmetallic powder as admixture in cement mortar, Materials and Structures. 45 (2012) 1439–1445.
DOI: 10.1617/s11527-012-9843-0
Google Scholar
[36]
R. Wang, T.F. Zhang, P.M. Wang, Effect of the particle size of nonmetallic powder recycled from waste printed circuit boards on the performance of cement mortar: accepted to Journal of Building Materials (2013).
DOI: 10.1617/s11527-012-9843-0
Google Scholar
[37]
P.M. Wang, S.X. Feng, X.P. Liu, Application of backscattered electron imaging and image analysis in microstructure research on cement-based materials, Journal of the Chinese ceramic society. 39 (2011) 1659-1665.
Google Scholar
[38]
S. Cui, H. Guo, C. Wang et al., Synthesis and characterization of amorphous calcium-silicate hydrate ( C-S-H) nanoparticles, Bulletin of the Chinese Ceramic Society. 31 (2012) 531-534.
Google Scholar
[39]
S. Han, P.Y. Yan, R.G. Liu, Study on the hydration product of cement in early age using TEM, Science China Technological Sciences. 10 (2012) 1-7.
DOI: 10.1007/s11431-012-4860-3
Google Scholar