Browse > Article
http://dx.doi.org/10.12989/cac.2012.10.2.135

Reconstruction of internal structures and numerical simulation for concrete composites at mesoscale  

Du, Chengbin (Department of Engineering Mechanics, Hohai University)
Jiang, Shouyan (Department of Engineering Mechanics, Hohai University)
Qin, Wu (CCCC Third Harbor Consultants Co., Ltd.)
Xu, Hairong (Department of Engineering Mechanics, Hohai University)
Lei, Dong (Department of Engineering Mechanics, Hohai University)
Publication Information
Computers and Concrete / v.10, no.2, 2012 , pp. 135-147 More about this Journal
Abstract
At mesoscale, concrete is considered as a three-phase composite material consisting of the aggregate particles, the cement matrix and the interfacial transition zone (ITZ). The reconstruction of the internal structures for concrete composites requires the identification of the boundary of the aggregate particles and the cement matrix using digital imaging technology followed by post-processing through MATLAB. A parameter study covers the subsection transformation, median filter, and open and close operation of the digital image sample to obtain the optimal parameter for performing the image processing technology. The subsection transformation is performed using a grey histogram of the digital image samples with a threshold value of [120, 210] followed by median filtering with a $16{\times}16$ square module based on the dimensions of the aggregate particles and their internal impurity. We then select a "disk" tectonic structure with a specific radius, which performs open and close operations on the images. The edges of the aggregate particles (similar to the original digital images) are obtained using the canny edge detection method. The finite element model at mesoscale can be established using the proposed image processing technology. The location of the crack determined through the numerical method is identical to the experimental result, and the load-displacement curve determined through the numerical method is in close agreement with the experimental results. Comparisons of the numerical and experimental results show that the proposed image processing technology is highly effective in reconstructing the internal structures of concrete composites.
Keywords
digital image processing; concrete composites; mesoscale; experiment; numerical simulation;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Buyukozturk, O. (1998), "Imaging of concrete structures", NDT&E. Int., 31(4), 233-243.   DOI   ScienceOn
2 Chen, H.Q. (2007), "On the obstacles and way to assess the seismic catastrophe for high arch dams", Sci. China Ser. E., 50(1), 11-19.   DOI   ScienceOn
3 Du, C.B. and Sun, L.G. (2007), "Numerical simulation of aggregate shapes of two dimensional concrete and its application", J. Aerospace Eng., 20(3), 172-178.   DOI   ScienceOn
4 Ghouse, M.D., Lakshmana, R.C. and Rao, B.N. (2010), "Numerical simulation of fracture process in cement concrete using unit cell approach", Mech. Adv. Mater. Struc., 17(7), 481-487.   DOI   ScienceOn
5 Gonzalez, R.C., Woods, R.E. and Eddins, S.L. (2009), Digital image processing using MATLAB, Gatesmark Publishing.
6 Bandyopadhyaya, R., Das, A. and Basu, S. (2008), "Numerical simulation of mechanical behaviour of asphalt mix", Constr. Build. Mater., 22(6), 1051-1058.   DOI   ScienceOn
7 Borst, R. (2002), "Fracture in quasi-brittle materials: a review of continuum damage-based approach", Eng. Fract. Mech., 69(2), 95-112.   DOI   ScienceOn
8 Hillerborg, A., Modeer, M. and Petersson, P.E. (1976), "Analysis of crack formation and crack growth in concrete by means of fracture mechanics and finite elements", Cement Concrete Res., 6(6), 773-782.   DOI   ScienceOn
9 John, S.L., Denis, T.K. and Surendra, P.S. (2001), "Measuring three-dimensional damage in concrete under compression", ACI Mater. J., 98(6), 465-475.
10 Kocur, G.K., Saenger, E.H. and Vogel, T. (2010), "Elastic wave propagation in a segmented X-ray computed tomography model of a concrete specimen", Constr. Build. Mater., 24(12), 2393-2400.   DOI   ScienceOn
11 Kutaya, M.E., Arambulab, E., Gibsonc, N. and Youtcheff, J. (2010), "Three-dimensional image processing methods to identify and characterize aggregates in compacted asphalt mixtures", Int. J. Pavement Eng., 11(6), 511-528.   DOI   ScienceOn
12 Leite, J.P.B., Slowik, V. and Apel, J. (2007), "Computational model of mesoscopic structure of concrete for simulation of fracture processes", Comput. Struct., 85(17-18), 1293-1303.   DOI   ScienceOn
13 Moar, C.E., Kwana, K.H. and Chan, H.C. (1998), "Particle size distribution analysis of coarse aggregate using digital image processing", Cement Concrete Res., 28(6), 921-930.   DOI   ScienceOn
14 Xu, R., Yang, X.H., Yin, A.Y., Yang, S.F. and Ye, Y. (2010), "A three-dimensional aggregate generation and packing algorithm for modeling asphalt mixture with graded aggregate", J. Mech., 26(2), 165-171.   DOI
15 Yang, R. and Buenfeld, N.R. (2001), "Binary segmentation of aggregate in SEM image analysis of concrete", Cement Concrete Res., 31(3), 437-441.   DOI   ScienceOn
16 Yue, Z.Q., Chen, S. and Tham, L.G. (2003), "Finite element modeling of geomaterials using digital image processing", Comput. Geotech., 30(5), 375-397.   DOI   ScienceOn