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Early age behavior analysis for reinforced concrete bridge pier

  • Wang, Xianfeng (College of Civil Engineering, Shenzhen University) ;
  • Li, Dawang (College of Civil Engineering, Shenzhen University) ;
  • Han, Ningxu (College of Civil Engineering, Shenzhen University) ;
  • Xing, Feng (College of Civil Engineering, Shenzhen University)
  • Received : 2015.12.08
  • Accepted : 2016.05.09
  • Published : 2016.11.25

Abstract

In this study, the construction of a reinforced concrete bridge pier was analyzed from durability point of view. The goal of the study is to analyze the crack iniation condition due to construction and present some recommendations for construction conditions of the reinforced concrete bridge pier. The bridge is located at the western port area of Shenzhen, where the climate is high temperature and humidity. To control the cracking of concrete, a construction simulation was carried out for a heat transfer problem as well as a thermal stress problem. A shrinkage model for heat produced due to cement hydration and a Burger constitutive model to simulate the creep effect are used. The modelling based on Femmasse(C) is verified by comparing with the testing results of a real underground abutment. For the bridge pier, the temperature and stress distribution, as well as their evolution with time are shown. To simulate the construction condition, four initial concrete temperatures ($5^{\circ}C$, $10^{\circ}C$, $15^{\circ}C$, $20^{\circ}C$) and three demoulding time tips (48h, 72h, 96h) are investigated. From the results, it is concluded that a high initial concrete temperature could result in a high extreme internal temperature, which causes the early peak temperature and the larger principle stresses. The demoulding time seems to be less important for the chosen study cases. Currently used 72 hours in the construction practice may be a reasonable choice.

Keywords

Acknowledgement

Supported by : National Natural Science Foundation of China

References

  1. Alvarado, Y.A., Calderon, P.A., Adam, J.M., Paya-Zaforteza, I.J., Pellicer, T.M., Pallares, F.J. and Moragues, J.J. (2009), "An experimental study into the evolution of loads on shores and slabs during construction of multistory buildings using partial striking", Eng. Struct., 31(9), 2132-2140. https://doi.org/10.1016/j.engstruct.2009.03.021
  2. Alvarado, Y.A., Calderon, P.A., Gasch, I. and Adam, J.M. (2010), "A numerical study into the evolution of loads on shores and slabs during construction of multistorey buildings, Comparison of partial striking with other techniques", Eng. Struct., 32(10), 3093-3102. https://doi.org/10.1016/j.engstruct.2010.05.028
  3. Azenha, M., Lameiras, R., de Sousa, C. and Barros, J. (2014), "Application of air cooled pipes for reduction of early age cracking risk in a massive RC wall", Eng. Struct., 62, 148-163.
  4. Bazant, Z.P. (1986), "Creep and shrinkage of concrete, mathematical modeling", Fourth Rilem International Symposium, Evanstone, Illinois 60201, USA.
  5. Briffaut, M., Benboudjema, F., Torrenti, J.M. and Nahas, G. (2011), "Numerical analysis of the thermal active restrained shrinkage ring test to study the early age behavior of massive concrete structures", Eng. Struct., 33(4), 1390-1401. https://doi.org/10.1016/j.engstruct.2010.12.044
  6. Conceicao, J., Faria, R., Azenha, M., Mamede, F. and Souza, F. (2014), "Early-age behaviour of the concrete surrounding a turbine spiral case: Monitoring and thermo-mechanical modelling", Eng. Struct., 81, 327-340. https://doi.org/10.1016/j.engstruct.2014.10.009
  7. Du, C., Liu, T., Zou, D. and Teng, J. (2015), "Time dependent strain development of early age concrete under step-by-step load history", Constr. Build. Mater., 86, 133-139. https://doi.org/10.1016/j.conbuildmat.2015.03.116
  8. Klemczak, B.A. (2014), "Modeling thermal-shrinkage stresses in early age massive concrete structures-Comparative study of basic models", Arch. Civil Mech. Eng., 14(4), 721-733. https://doi.org/10.1016/j.acme.2014.01.002
  9. Knoppik-Wrobel, A. and Klemczak, B. (2015), "Degree of restraint concept in analysis of early-age stresses in concrete walls", Eng. Struct., 102, 369-386. https://doi.org/10.1016/j.engstruct.2015.08.025
  10. Li, Y., Nie, L. and Wang, B. (2014), "A numerical simulation of the temperature cracking propagation process when pouring mass concrete", Automat. Constr., 37, 203-210. https://doi.org/10.1016/j.autcon.2013.08.005
  11. RILEM TC-119 (1998), "Prevention of thermal cracking in concrete at early age", The Publishing Company of RILEM, Munich.
  12. Roelfstra, P.E. (1989), "A numerical approach to investigate the properties of concrete", Numerical Concrete, Ph.D.Thesis, EPF-Lausanne, Switzerland.
  13. Xu, B., Zou, D. and Liu, H. (2012), "Three-dimensional simulation of the construction process of the Zipingpu concrete face rockfill dam based on a generalized plasticity model", Comput. Geotech., 43, 143-154. https://doi.org/10.1016/j.compgeo.2012.03.002
  14. Yapar, O., Basu, P.K. and Nordendale, N. (2015), "Accurate finite element modeling of pretensioned prestressed concrete beams", Eng. Struct., 101, 163-178. https://doi.org/10.1016/j.engstruct.2015.07.018
  15. Ye, W. and Yang, Y.M. (2008), "Temperature monitor and temperature stress analysis of big bulk concrete structure", Concrete, 9, 104-107. (in Chinese)
  16. Zhu, B.F. (1999), "Thermal stresses in massive concrete structures and temperature control", China Electric Power Publisher, Beijing. (in Chinese)

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