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Mesoscale model for cracking of concrete cover induced by reinforcement corrosion

  • Chen, Junyu (Key Laboratory of Performance Evolution and Control for Engineering Structures, Ministry of Education, Tongji University) ;
  • Zhang, Weiping (Key Laboratory of Performance Evolution and Control for Engineering Structures, Ministry of Education, Tongji University) ;
  • Gu, Xianglin (Key Laboratory of Performance Evolution and Control for Engineering Structures, Ministry of Education, Tongji University)
  • Received : 2017.08.11
  • Accepted : 2018.04.19
  • Published : 2018.07.25

Abstract

Cracking of concrete cover induced by reinforcement corrosion is a critical issue for life-cycle design and maintenance of reinforced concrete structures. However, the critical degree of corrosion, based on when the concrete surface cracks, is usually hard to predict accurately due to the heterogeneity inherent in concrete. To investigate the influence of concrete heterogeneity, a modified rigid-body-spring model, which could generate concrete sections with randomly distributed coarse aggregates, has been developed to study the corrosion-induced cracking process of the concrete cover and the corresponding critical degree of corrosion. In this model, concrete is assumed to be a three-phase composite composed of coarse aggregate, mortar and an interfacial transition zone (ITZ), and the uniform corrosion of a steel bar is simulated by applying uniform radial displacement. Once the relationship between radial displacement and degree of corrosion is derived, the critical degree of corrosion can be obtained. The mesoscale model demonstrated its validity as it predicted the critical degree of corrosion and cracking patterns in good agreement with analytical solutions and experimental results. The model demonstrates how the random distribution of coarse aggregate results in a variation of critical degrees of corrosion, which follows a normal distribution. A parametric study was conducted, which indicates that both the mean and variation of critical degree of corrosion increased with the increase of concrete cover thickness, coarse aggregates volume fraction and decrease of coarse aggregate size. In addition, as tensile strength of concrete increased, the average critical degree of corrosion increased while its variation almost remained unchanged.

Keywords

Acknowledgement

Supported by : National Natural Science Foundation of China

References

  1. Alonso, C., Andrade, C., Rodriguez, J. and Diez, J.M. (1998), "Factors controlling cracking of concrete affected by reinforcement corrosion", Mater. Struct., 31(7), 435-441. https://doi.org/10.1007/BF02480466
  2. Andrade, C., Alonso, C. and Molina, F.J. (1993), "Cover cracking as a function of bar corrosion: Part I-Experimental test", Mater. Struct., 26(8), 453-464. https://doi.org/10.1007/BF02472805
  3. Bazant, Z.P. (1979), "Physical model for steel corrosion in concrete sea structures-theory", J. Struct. Div., 105(ST6), 1137-1153.
  4. Chen, A., Pan, Z. and Ma, R. (2016), "Mesoscopic simulation of steel rebar corrosion process in concrete and its damage to concrete cover", Struct. Infrastr. Eng., 13(4), 478-493.
  5. Chernin, L., Val, D. and Volokh, K. (2010), "Analytical modelling of concrete cover cracking caused by corrosion of reinforcement", Mater. Struct., 43(4), 543-556. https://doi.org/10.1617/s11527-009-9510-2
  6. Du, X. and Jin, L. (2014), "Meso-scale numerical investigation on cracking of cover concrete induced by corrosion of reinforcing steel", Eng. Fail. Anal., 39, 21-33. https://doi.org/10.1016/j.engfailanal.2014.01.011
  7. Du, X., Jin, L. and Zhang, R. (2014), "Modeling the cracking of cover concrete due to non-uniform corrosion of reinforcement", Corros. Sci., 89, 189-202. https://doi.org/10.1016/j.corsci.2014.08.025
  8. Finozzi, I., Berto, L. and Saetta, A. (2015), "Structural response of corroded RC beams: a comprehensive damage approach", Comput. Concrete, 15(3), 411-436. https://doi.org/10.12989/cac.2015.15.3.411
  9. Firouzi, A. and Rahai, A. (2013), "Reliability assessment of concrete bridges subject to corrosion-induced cracks during life cycle using artificial neural networks", Comput. Concrete, 12(1), 91-107. https://doi.org/10.12989/cac.2013.12.1.091
  10. Fischer, C. (2013), "Beitrag zu den Auswirkungen der Bewehrungsstahlkorrosion auf den Verbund zwischen Stahl und Beton", Ph.D. Dissertation, Stuttgart University, Stuttgart. (in Germany)
  11. Grassl, P. and Davies, T. (2011), "Lattice modelling of corrosion induced cracking and bond in reinforced concrete", Cement Concrete Compos., 33(9), 918-924. https://doi.org/10.1016/j.cemconcomp.2011.05.005
  12. Gu, X., Hong, L., Wang, Z. and Lin, F. (2013), "A modified rigidbody-spring concrete model for prediction of initial defects and aggregates distribution effect on behavior of concrete", Comput. Mater. Sci., 77, 355-365. https://doi.org/10.1016/j.commatsci.2013.04.050
  13. Gu, X., Hong, L., Wang, Z. and Lin, F. (2013), "Experimental study and application of mechanical properties for the interface between cobblestone aggregate and mortar in concrete", Constr. Build. Mater., 46, 156-166. https://doi.org/10.1016/j.conbuildmat.2013.04.028
  14. Hansen, E.J. and Saouma, V.E. (1999), "Numerical simulation of reinforced concrete deterioration: Part II-Steel corrosion and concrete cracking", ACI Mater. J., 96(3), 331-340.
  15. International Organization for Standardization (ISO) (1997), Statistical Interpretation of Data-Tests for Departure from the Normal Distribution.
  16. Jang, B.S. and Oh, B.H. (2010), "Effects of non-uniform corrosion on the cracking and service life of reinforced concrete structures", Cement Concrete Res., 40(9), 1441-1450. https://doi.org/10.1016/j.cemconres.2010.03.018
  17. Liu, Y.P. and Weyers, R.E. (1998), "Modeling the time-tocorrosion cracking in chloride contaminated reinforced concrete structures", ACI Mater. J., 95(6), 675-680.
  18. Nagai, K., Sato, Y. and Ueda, T. (2004), "Mesoscopic simulation of failure of mortar and concrete by 2D RBSM", J. Adv. Concrete Technol., 2(3), 359-374. https://doi.org/10.3151/jact.2.359
  19. Oh, B.H., Kim, K.H. and Jang, B.S. (2009), "Critical corrosion amount to cause cracking of reinforced concrete structures", ACI Mater. J., 106(4), 333-339.
  20. Richard, B., Quiertant, M., Bouteiller, V., Delaplace, A., Adelaide, L., Ragueneau, F. and Cremona, C. (2016), "Experiment and numerical analysis of corrosion-induced cover cracking in reinforced concrete sample", Comput. Concrete, 18(3), 421-439. https://doi.org/10.12989/cac.2016.18.3.421
  21. Safehian, M. and Ramezanianpour, A. (2015), "Prediction of RC structure service life from field long term chloride diffusion", Comput. Concrete, 15(4), 589-606. https://doi.org/10.12989/cac.2015.15.4.589
  22. Savija, B., Lukovic, M., Pacheco, J. and Schlangen, E. (2013), "Cracking of the concrete cover due to reinforcement corrosion: A two-dimensional lattice model study", Constr. Build. Mater., 44, 626-638. https://doi.org/10.1016/j.conbuildmat.2013.03.063
  23. Tran, K.K., Nakamura, H., Kawamura, K. and Kunieda, M. (2011), "Analysis of crack propagation due to rebar corrosion using RBSM", Cement Concrete Compos., 33(9), 906-917. https://doi.org/10.1016/j.cemconcomp.2011.06.001
  24. Vidal, T., Castel, A. and Francois, R. (2004), "Analyzing crack width to predict corrosion in reinforced concrete", Cement Concrete Res., 34(1), 165-174. https://doi.org/10.1016/S0008-8846(03)00246-1
  25. Vu, K., Stewart, M.G. and Mullard, J. (2005), "Corrosion-induced cracking: Experimental data and predictive models", ACI Struct. J., 102(5), 719-726.
  26. Wang, Z., Lin, F. and Gu, X. (2008), "Numerical simulation of failure process of concrete under compression based on mesoscopic discrete element model", Tsinghua Sci. Technol., 13(S1), 19-25. https://doi.org/10.1016/S1007-0214(08)70121-4
  27. Xi, X. and Yang, S.T. (2017), "Time to surface cracking and crack width of reinforced concrete structures under corrosion of multiple rebars", Constr. Build. Mater., 155, 114-125. https://doi.org/10.1016/j.conbuildmat.2017.08.051
  28. Zhang, W.P. (1999), "Damage prediction and durability estimation for corrosion of reinforcement in concrete structures", Ph.D. Dissertation, Tongji University, Shanghai. (in Chinese)
  29. Zhao, Y., Dong, J. and Jin, W. (2016), "Corrosion-induced concrete cracking model considering corrosion product-filled paste at the concrete/steel interface", Constr. Build. Mater., 116, 273-280. https://doi.org/10.1016/j.conbuildmat.2016.04.097
  30. Zhao, Y., Wu, Y. and Jin, W. (2013), "Distribution of millscale on corroded steel bars and penetration of steel corrosion products in concrete", Corros. Sci., 66, 160-168. https://doi.org/10.1016/j.corsci.2012.09.014
  31. Zhao, Y., Yu, J. and Jin, W. (2011), "Damage analysis and cracking model of reinforced concrete structures with rebar corrosion", Corros. Sci., 53(10), 3388-3397. https://doi.org/10.1016/j.corsci.2011.06.018