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Original Articles

Carbonisation and calcium leaching-induced deterioration of concrete in dams: field inspection and microstructural investigation

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Pages 2046-2069 | Received 19 Oct 2017, Accepted 04 Jul 2018, Published online: 17 Oct 2018

References

  • Bangert, F., Grasberger, S., Kuhl, D., & Meschke, G. (2003). Environmentally induced deterioration of concrete: physical motivation and numerical modeling. Engineering Fracture Mechanics, 70, 891–910.
  • Bartojay, K., & Joy, W. (2010). Long-term properties of Hoover Dam mass concrete. Hoover Dam, Anniversary History Symposium, 74–84.
  • Cai, Y. B., & Lin, B. Y. (1993). Inspection and analysis on concrete aging for Xinanjiang Dam, Chinese Journal of Dam Observation and Geotechnical Tests, 17, 22–28.
  • Carde, C., François, R., & Torrenti, J. M. (1996). Leaching of both calcium hydroxide and c-s-h from cement paste: modeling the mechanical behavior. Cement & Concrete Research, 26, 1257–1268.
  • Chen, C. T., & Ho, C. W. (2013). Influence of cyclic humidity on carbonation of concrete. Journal of Materials in Civil Engineering, 25, 1929–1935.
  • Dolen, T. P. (2008). Historical development of durable concrete for the Bureau of Reclamation. In C. S. Stephen, Just add water: Reclamation projects and development fantasies in the Upper Basin of the Colorado River (135–151). Colorado: U.S. Department of the Interior Denver.
  • EN 206. (2013). Concrete – Specification, performance, production and conformity. Stockholm: Swedish Standards Institute.
  • Gallé C. (2001). Effect of drying on cement-based materials pore structure as identified BY mercury intrusion porosimetry: A comparative study between oven-, vacuum- and freeze-drying. Cement & Concrete Research, 31, 1467–1477.
  • GB 50487. (2008). Code for engineering geological investigation of water resources and hydropower. Beijing: Ministry of Housing and Urban-Rural Construction of the People’s Republic of China.
  • Gruyaert, E., Heede, P. V. D., & Belie, N. D. (2013). Carbonation of slag concrete: Effect of the cement replacement level and curing on the carbonation coefficient – Effect of carbonation on the pore structure. Cement & Concrete Composites, 35, 39–48.
  • Haga, K., Shibata, M., Hironaga, M., Tanaka, S., & Nagasaki, S. (2005). Change in pore structure and composition of hardened cement paste during the process of dissolution. Cement & Concrete Research, 35, 943–950.
  • Hu, J. (2016). Multi-scale numerical simulation analysis for influence of combined leaching and frost deteriorations on mechanical properties of concrete. Multidiscipline Modeling in Materials and Structures, 12, 648–671.
  • Hu, J., Ma, F. H., & Wu, S. H. (2017). Nonlinear finite-element-based structural system failure probability analysis methodology for gravity dams considering correlated failure modes. Journal of Central South University, 24, 178–189.
  • Hu, M. Y., Xu, W. M., He, W., & Peng, J. S. (2018). Investigation on dissoluble erosion of large-and-medium-sized concrete dams in Jiangxi Province. Journal of Yangtze River Scientific Research Institute, 35, 54–59.
  • Kumar, R., & Bhattacharjee, B. (2003). Porosity, pore size distribution and in situ strength of concrete. Cement & Concrete Research, 33, 155–164.
  • Lagerblad, B. (2001). Leaching performance of concrete based on studies of samples from old concrete constructions (SKB Technical Report TR-01-27). Stockholm, Sweden: SKB.
  • Larrard, T. D., Benboudjema, F., Colliat, J. B., Torrenti, J. M., & Deleruyelle, F. (2010). Concrete calcium leaching at variable temperature: Experimental data and numerical model inverse identification. Computational Materials Science, 49, 35–45.
  • Laskar, M. A. I., Kumar, R., & Bhattacharjee, B. (1997). Some aspects of evaluation of concrete through mercury intrusion porosimetry. Cement & Concrete Research, 27, 93–105.
  • Marciniak, A., Grymin, W., Margiewicz, T., & Koniorczyk M. (2017). Influence of freezing-induced damage on the carbonation rate of concrete. European Journal of Environmental & Civil Engineering, 21, 1285–1300.
  • Monteiro, I., Branco, F. A., Brito, J. D., & Neves, R. (2012). Statistical analysis of the carbonation coefficient in open air concrete structures. Construction & Building Materials, 29, 263–269.
  • Ngala, V. T., & Page, C. L. (1997). Effects of carbonation on pore structure and diffusional properties of hydrated cement pastes. Cement & Concrete Research, 27, 995–1007.
  • Pan, J. W., Feng, Y. T., Jin, F., & Zhang, C. H. (2013). Numerical prediction of swelling in concrete arch dams affected by alkali-aggregate reaction. European Journal of Environmental & Civil Engineering, 17, 231–247.
  • Papadakis, V. G. (2000). Effect of supplementary cementing materials on concrete resistance against carbonation and chloride ingress. Cement & Concrete Research, 30, 291–299.
  • Papadakis, V. G., Vayenas, C. G., & Fardis, M. N. (1991). Experimental investigation and mathematical modeling of the concrete carbonation problem. Chemical Engineering Science, 46, 1333–1338.
  • Rosenqvist, M. (2016). Frost-induced deterioration of concrete in hydraulic structures: interactions between water absorption, leaching and frost action (Phd thesis), Division of Building Materials, Lund University, Lund.
  • Rosenqvist, M., Bertron, A., Fridh, K., & Hassanzadeh, M. (2017). Concrete alteration due to 55 years of exposure to river water: Chemical and mineralogical characterisation. Cement & Concrete Research, 92, 110–120.
  • Sisomphon, K., & Franke, L. (2007). Carbonation rates of concretes containing high volume of pozzolanic materials. Cement & Concrete Research, 37, 1647–1653.
  • Sugiyama, T., Promentilla, M. A. B., Hitomi, T., & Takeda, N. (2010). Application of synchrotron microtomography for pore structure characterization of deteriorated cementitious materials due to leaching. Cement & Concrete Research, 40, 1265–1270.
  • Sulapha, P., Wong, S. F., Wee, T. H., & Swaddiwudhipong, S. (2003). Carbonation of concrete containing mineral admixtures. Journal of Materials in Civil Engineering, 15, 134–143.
  • Thiery, M., Villain, G., Dangla, P., & Platret, G. (2007). Investigation of the carbonation front shape on cementitious materials: Effects of the chemical kinetics. Cement & Concrete Research, 37, 1047–1058.
  • Trägårdh, J., & Lagerblad, B. (1998). Leaching of 90-year old concrete mortar in contact with stagnant water (SKB Technical Report TR 98-11). Stockholm, Sweden: SKB.
  • Wu, Z. R., Li, J., Gu, C. S., & Su, H. Z. (2007). Review on hidden trouble detection and health diagnosis of hydraulic concrete structures. Science in China Series E-Technological Sciences, 50, 34–50.
  • Xing, L. S. (2003). Surface carbonating of concrete dam and its perniciousness analysis. Chinese Journal of Hydroelectric Engineering, 4, 67–73.

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