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Chemical interaction between polymer and cement in polymer-cement concrete

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Polymers are widely used in cement mortar and concrete modification due to their significant role in improving the overall performance of cement-based materials. Their physical interaction is well-accepted, while less attention is given to chemical interaction between the polymers and cement. Through a review of prior arts, chemical interactions are discussed and summarized in this paper. Various chemical interactions may take place between cement and different types of polymers. Understanding these chemical interactions will play an important role in clarifying the relationship between microstructure and macrostructure of polymer-modified cementitious materials. Authors expressed and proved the conviction that the organic-inorganic (Polymer-Portland cement) composite with some components chemically bonded, in parallel to the physical interaction, will be the next stage in concrete technology progress.
Rocznik
Strony
785--792
Opis fizyczny
Bibliogr. 51 poz., rys., tab., il., wykr.
Twórcy
autor
  • Key Laboratory of Advanced Civil Engineering Materials of Ministry of Education, School of Materials Science and Engineering, Tongji University, 4800 Cao’an St., Shanghai 201804, China
autor
  • Key Laboratory of Advanced Civil Engineering Materials of Ministry of Education, School of Materials Science and Engineering, Tongji University, 4800 Cao’an St., Shanghai 201804, China
autor
  • Key Laboratory of Advanced Civil Engineering Materials of Ministry of Education, School of Materials Science and Engineering, Tongji University, 4800 Cao’an St., Shanghai 201804, China
autor
  • Building Research Institute (ITB), 1 Filtrowa St., 00-611 Warsaw, Poland
Bibliografia
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  • [29] R. Wang and P. M. Wang, “Research development of the properties and mechanism of polymer-modified cementitious materials”, J. Materials Review 21, 93–96 (2007).
  • [30] D. A. Silva, H. R. Roman, and P. J. P. Gleize, “Evidences of chemical interaction between EVA and hydrating portland cement”, J. Cement and Concrete Research 32, 1383–1390 (2002).
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  • [32] J. Geist, S. Amanga, and B. Mellor “Improved portland cement mortars with polyvinyl acetate emulsions”, Industrial and Engineering Chemistry 45, 759–767 (1953).
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  • [36] D. A. Silva and P. J. M. Monteiro, “Analysis of C3A hydration using soft x-rays transmission microscopy: effect of EVA copolymer”, J. Cement and Concrete Research 35, 2026–2032 (2005).
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  • [38] H. Ma, Y. Tian, and Z. Li, “Interactions Between Organic and Inorganic Phases in PA-and PU/PA-modified-cement-based Materials”, J. Journal of Materials in Civil Engineering 23, 1412–1421 (2011).
  • [39] Y. Tian, X. Jin, N. Jin, et al., “Research on the microstructure formation of polyacrylate latex modified mortars”, J. Construction and Building Materials 47, 1381–1394 (2013).
  • [40] B. Li, Y. Tian, R. Y. Zhao, et al., “Microstructure and modification mechanism of polyacrylate latex modified mortars”, J. Journal of Zhejiang University 48, 1345–1361 (2014).
  • [41] J. Long, K. Yu, and G. D. Li, “Correlation between cement hydrate and polymers”, J. Concrete 3, 35–41 (1995).
  • [42] J. M. Gao and K. Morino, “Research on polymer modified cement mortar containing silica fume”, J. China Concrete and Cement Products 5, 8–10 (2000).
  • [43] R. Wang, L. J. Yao, and P. M. Wang, “Mechanism analysis and effect of styrene-acrylate copolymer powder on cement hydrates”, J. Construction and Building Materials 41, 538–544 (2013).
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  • [45] J. Plank and M. Gretz, “Study on the interaction between anionic and cationic latex particles and portland cement”, J. Colloids and Surfaces Aspects 330, 227–233 (2008).
  • [46] C. Y. Rha and J. W Seong, “Properties and interactions of cement with polymer in the hardened cement pastes added absorbent polymer”, J. Journal of Materials Science 34, 4653–4659 (1999).
  • [47] S. G. Hu, “Some characteristic analyses in the hydration system of polyacrylamide-monocalcium aluminate”, Journal of Wuhan University of Technology 16, 69–73 (1994).
  • [48] P. Choonkeum, C. Dongwon, and O. Heegap, “Role of ions in the marco-defect-free cementitious materials made with ordinary portland cement”, Journal of the Chinese Ceramic Society 24, 382–388 (1996).
  • [49] D. Gawin, M. Koniorczyk, and F. Pesavento, “Modelling of hydro-thermo-chemo-mechanical phenomena in buildings materials”, Bull. Pol. Ac.: Tech 61 (1), 51–64 (2013).
  • [50] P. Łukowski, “Material modification in concrete”, Ass. Of Concrete Producers, Cracow, 2016 [in Polish].
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Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-fb854cbc-126e-4dc9-a655-3e9e1f1d19d1
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