Acidification at rebar-concrete interface induced by accelerated corrosion test in aggressive chloride environment

被引:38
作者
Hay, Rotana [1 ]
Ostertag, Claudia P. [1 ]
机构
[1] Univ Calif Berkeley, Dept Civil & Environm Engn, Berkeley, CA 94720 USA
基金
新加坡国家研究基金会;
关键词
Acidification; Rebar-concrete interface; Buffering; Corrosion; Electrochemical properties; Pore solution; CELL POTENTIAL MEASUREMENTS; LONG-TERM PERFORMANCE; C-S-H; CATHODIC PROTECTION; IMPRESSED CURRENT; ELECTROCHEMICAL-BEHAVIOR; REINFORCEMENT CORROSION; MECHANICAL-BEHAVIOR; STEEL REINFORCEMENT; BINDING-CAPACITY;
D O I
10.1016/j.cemconcomp.2020.103573
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The rebar-concrete interface plays a critical role in initiating corrosion of steel reinforcing bars embedded in concrete. The intimate physical contact between a steel rebar and the Ca(OH)(2)-rich interfacial transition zone of concrete provides physical protection and buffering action against corrosion. However, the mechanism of the buffering action is not well understood and a systematic study has not yet been conducted. This paper investigates acidification at the rebar-concrete interface, buffering capabilities of concrete made with 100% Portland cement and with 50% fly ash or ground-granulated slag as cement replacement, and corrosion behavior of the embedded rebar. It was found that a simple technique with filter paper wrapped around the steel rebar under a high impressed anodic current and a severe chloride environment allowed for interface solution to be accumulated, squeezed out, and collected for analysis. The solutions had pH values less than 2, thus proving acidification at the interface during the accelerated corrosion test. With a high content of Ca(OH)(2) in the matrix, the concrete with 100% cement as binder was shown to have a higher buffering capacity as compared to the matrix with 50% fly ash or slag as cement replacement. This acidification phenomenon promoted steel dissolution and subsequent corrosion activity, although the presence of cracks in the concrete cover could also play a dominant role in controlling the subsequent corrosion rates. Acidification was also shown to occur under natural corrosion of lower corrosion activity.
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页数:17
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共 101 条
[1]   STEEL-MORTAR INTERFACES - MICROSTRUCTURAL FEATURES AND MODE OF FAILURE [J].
ALKHALAF, MN ;
PAGE, CL .
CEMENT AND CONCRETE RESEARCH, 1979, 9 (02) :197-207
[2]   Effect of reinforcement corrosion on flexural behavior of concrete slabs [J].
Almusallam, AA ;
AlGahtani, AS ;
Aziz, AR ;
Dakhil, FH ;
Rasheeduzzafar .
JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 1996, 8 (03) :123-127
[3]   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
[4]  
ALSULAIMANI GJ, 1990, ACI STRUCT J, V87, P220
[5]   CHEMICAL-COMPOSITION OF CEMENT PORE SOLUTIONS [J].
ANDERSSON, K ;
ALLARD, B ;
BENGTSSON, M ;
MAGNUSSON, B .
CEMENT AND CONCRETE RESEARCH, 1989, 19 (03) :327-332
[6]   Electrochemical behaviour of steel rebars in concrete:: influence of environmental factors and cement chemistry [J].
Andrade, C ;
Keddam, M ;
Nóvoa, XR ;
Pérez, MC ;
Rangel, CM ;
Takenouti, H .
ELECTROCHIMICA ACTA, 2001, 46 (24-25) :3905-3912
[7]   Corrosion rate monitoring in the laboratory and on-site [J].
Andrade, C ;
Alonso, C .
CONSTRUCTION AND BUILDING MATERIALS, 1996, 10 (05) :315-328
[8]   Observations on the Morphology of Oxide Formation due to Reinforcement Corrosion [J].
Andrade, C. ;
Tavares, F. ;
Toro, L. ;
Fullea, J. .
MODELLING OF CORRODING CONCRETE STRUCTURES, 2011, 5 :179-193
[9]   Critical chloride content in reinforced concrete - A review [J].
Angst, Ueli ;
Elsener, Bernhard ;
Larsen, Claus K. ;
Vennesland, Oystein .
CEMENT AND CONCRETE RESEARCH, 2009, 39 (12) :1122-1138
[10]   Chloride threshold level for corrosion of steel in concrete [J].
Ann, Ki Yong ;
Song, Ha-Won .
CORROSION SCIENCE, 2007, 49 (11) :4113-4133