Durability Evolution of RC Bridge under Coupling Action of Chloride Corrosion and Carbonization Based on DLA Model

被引:7
作者
He, Haoxiang [1 ,2 ]
Li, Ruifeng [1 ]
Chen, Kui [1 ]
机构
[1] Beijing Univ Technol, Beijing Key Lab Earthquake Engn & Struct Retrofit, Beijing 100124, Peoples R China
[2] Beijing Collaborat Innovat Ctr Metropolitan Trans, Beijing 100124, Peoples R China
关键词
CARBON-DIOXIDE; CONCRETE; DIFFUSION; CRACKING; PENETRATION; PREDICTION; TRANSPORT;
D O I
10.1155/2015/951846
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Chloride attack and carbonization are the main factors which affect the durability of concrete structures, and the respective theoretical models are systematically established. However, the quantitative analysis and models about the coupling effect of chloride attack and carbonization are less, so the precision and level of durability analysis of reinforced concrete are restricted. Diffusion-limited aggregation (DLA) model can finely simulate the process of gas diffusion and condensation with randomness and fractal characteristics, which is suitable for revealing the durability evolution process of the chloride attack, carbonization, and the coupling action in concrete. Based on the principle of DLA, considering the factors such as diffusion depth, concrete properties, and exposure conditions which influence the characteristics of chloride diffusion and carbonization, as well as the coupling effect, an integrated DLA model is established. The concentration of carbon dioxide and chloride at any time and any location can be obtained and dynamically displayed based on the DLA model. The performance predict method for concrete and steel bars considering fatigue effect is presented based on DLA, according to the demand for bridge durability analysis. Numerical examples show that the method can dynamically and intensively simulate the durability evolution process of reinforced concrete bridge.
引用
收藏
页数:11
相关论文
共 31 条
[1]   Effect of crack opening on carbon dioxide penetration in cracked mortar samples [J].
Alahmad, S. ;
Toumi, A. ;
Verdier, J. ;
Francois, R. .
MATERIALS AND STRUCTURES, 2009, 42 (05) :559-566
[2]   Factors controlling cracking of concrete affected by reinforcement corrosion [J].
Alonso, C ;
Andrade, C ;
Rodriguez, J ;
Diez, JM .
MATERIALS AND STRUCTURES, 1998, 31 (211) :435-441
[3]  
Arya C, 1995, 44 CONCR SOC
[4]  
Baroghel-Bouny V., 2007, Concrete design for a given structure service life: durability management with regard to reinforcement corrosion and alkali-silica reaction: state of the art and guide for the implementation of a predictive performance approach based upon durability indicators
[5]  
Beaudoin E., 2008, VTTR0477109
[6]  
Bohni H., 2005, CORROSION REINFORCED
[7]   Effect of carbon dioxide on chloride penetration and chloride ion diffusion coefficient of blended Portland cement mortar [J].
Chindaprasirt, Prinya ;
Rukzon, Sumrerng ;
Sirivivatnanon, Vute .
CONSTRUCTION AND BUILDING MATERIALS, 2008, 22 (08) :1701-1707
[8]  
Chishty S. Q., 2014, J CHEM BIOL PHYS SCI, V4, P2549
[9]   Spatial time-dependent reliability analysis of corroding pretensioned prestressed concrete bridge girders [J].
Darmawan, M. Sigit ;
Stewart, Mark G. .
STRUCTURAL SAFETY, 2007, 29 (01) :16-31
[10]   Effect of microcracking and cracking on the development of corrosion in reinforced concrete members [J].
Francois, R ;
Arliguie, G .
MAGAZINE OF CONCRETE RESEARCH, 1999, 51 (02) :143-150