摘要(英) |
This main topic in this study is to discuss the coupled deterioration processes of concrete structures subjected to external sulfate attack. In addition to the diffusion process of sulfates in concrete microstructure, the second order reaction between sulfates and calcium aluminates in cement is also considered. The product of this second order reaction is ettringite, which has the expansive nature and will cause the expansion of concrete, thus increases the diffusivity of sulfates in concrete and the rate of expansion of the structure.
To simulate the coupled deterioration processes, the diffusion-reaction approach considered in this study is solved to find out the spatial and temporal distribution trend of sulfates and aluminates in concrete using the finite element software ABAQUS, the numerical computation of expansion is then performed adopting the theoretical model proposed in the reference (Tixier 2000).
After the numerical simulation and the parametric study, the following conclusions are obtained, (1) The concentration distribution solved in this coupled diffusion-reaction approach is mainly controlled by the diffusivity of sulfates rather than the rate constant of reaction. (2) The size of the concrete cross-section will significantly affect the total time cost in the coupled deterioration processes. (3) The maximum amount of expansion is controlled by the initial concentration of calcium aluminates, but reduced by the material properties of concrete such as capillary porosity and tensile strength etc.
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參考文獻 |
邱太銘,2002,「放射性廢棄物管理」,中興工程科技研究發展基金會,臺北市。
黃兆龍,2008,「放射性廢棄物設施混凝土結構長期安全規範之研究」,行政院原子能委員會放射性物料管理局委託研究計畫研究報告。
劉東山、蔡昭明,1993,「放射性廢料管理」,曉園出版社,臺北市。
Brown, P. W. (1981). "An evaluation of the sulfate resistance of cements in a controlled environment." Cem. Concr. Res., 11(5), 719-727.
Chawla, K. (1974). "On the applicability of the" Rule-of-Mixtures" to the strength properties of metal-matrix composites." Revista Brasileira de Física, 4(3), 411-418.
Chen, D. (2006). "Computational framework for durability assessment of reinforced concrete structures under coupled deterioration processes." Doctor of Philosophy, Vanderbilt University, Nashville, Tennessee.
Crank, J. (1979). The mathematics of diffusion, Oxford university press.
Gérard, B., and Marchand, J. (2000). "Influence of cracking on the diffusion properties of cement-based materials: Part I: Influence of continuous cracks on the steady-state regime." Cem. Concr. Res., 30(1), 37-43.
Hoglund, L. O. (1992). "Some notes on ettringite formation in cementitious materials - influence of hydration and thermodynamic constraints for durability." Cem. Concr. Res., 22(2-3), 217-228.
Karihaloo, B. L. (1995). Fracture mechanics and structural concrete, Longman Scientific & Technical Harlow, Essex, England.
Lide, D. R. (2009). CRC handbook of chemistry and physics : a ready-reference book of chemical and physical data, Boca Raton, Fla. : CRC Press.
Lienhard, J. H. (1981). A heat transfer textbook, Englewood Cliffs, N.J : Prentice-Hall.
Nemat-Nasser, S., and Hori, M. (1993). "Micromechanics: overall properties of heterogeneous materials." Elsevie, Amsterdam.
Tixier, R. (2000). "Microstructural development and sulfate attack modeling in blended cement-based materials." Doctor of Philosophy, Arizona State University.
Tixier, R., and Mobasher, B. (2003a). "Modeling of damage in cement-based materials subjected to external sulfate attack. I: Formulation." J. Mater. Civ. Eng., 15(4), 305-313.
Tixier, R., and Mobasher, B. (2003b). "Modeling of damage in cement-based materials subjected to external sulfate attack. II: Comparison with experiments." J. Mater. Civ. Eng., 15(4), 314-322. |