Concrete Cracking Prediction Including the Filling Proportion of Strand Corrosion Products
Abstract
:1. Introduction
2. Experimental Program
2.1. Specimens Details
2.2. Accelerated Corrosion of the Strand
2.3. Crack Width and Corrosion Loss Measurement
3. Experimental Results and Discussion
3.1. Corrosion Morphology, Cracking Propagation, and Corrosion Loss
3.1.1. Corrosion Morphology of the Strand
3.1.2. Crack Width and Corrosion Loss
3.1.3. Cracking Propagation
3.2. Filling of Corrosion Products in Cracks
3.2.1. Composition of Corrosion Products
3.2.2. Filling of Corrosion Products
4. Prediction Model of Crack Propagation
4.1. Corrosion Products at the Micro-Crack Formation
4.2. Crack Width on the Concrete Surface
4.3. Verification of the Prediction Model
5. Conclusions
- The filling extent of corrosion products varies with crack propagation. The rust-filling ratio increases with the propagating crack until a critical width. Beyond the critical width, the rust-filling extent remains stable. Using stirrups can decrease the critical crack width.
- Stirrups can restrict the corrosion-induced crack propagation. The tangent of cracking angle increases with the increasing corrosion degree. Using stirrups decreases the corrosion-induced crack width.
- The proposed model can provide a reasonable prediction for corrosion-induced crack width. The prediction of corrosion-induced cracks are sensitive to the rust-filling extent. The prediction model should incorporate the rational filling effect of corrosion products.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Type | C | Mn | Si | P | S | Cr | Cu | Ni | Ti | Al |
---|---|---|---|---|---|---|---|---|---|---|
Strand | 0.82 | 0.74 | 0.21 | 0.012 | 0.006 | 0.17 | 0.09 | 0.03 | 0.03 | 0.03 |
Deformed bars | 0.2 | 1.34 | 0.55 | 0.033 | 0.028 | / | / | / | / | / |
Type | Diameter (mm) | Yield Strength (Mpa) | Elastic Modulus (Gpa) |
---|---|---|---|
Strand | 15.2 | 1830 | 195 |
Deformed bars (HRB335) | 10 | 335 | 200 |
Deformed bars (HRB335) | 8 | 335 | 200 |
Water to Cement Ratio | Cement (kg/m3) | Water (kg/m3) | Sand (kg/m3) | Stone (kg/m3) |
---|---|---|---|---|
0.43 | 417 | 179 | 676 | 1026 |
Beams | S6, S9, S10, S11, S12, S13 | RS3, RS7, RS9, RS10, RS11, RS12 |
---|---|---|
Concrete strength (MPa) | 32.5 | 35.5 |
Beams | Corrosion Time (Days) |
---|---|
S6 | 2 |
S9 | 9 |
S10 | 7 |
S11 | 3 |
S12 | 5 |
S13 | 6 |
RS3 | 7 |
RS7 | 8 |
RS9 | 14 |
RS10 | 9 |
RS11 | 3 |
RS12 | 3 |
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Wang, L.; Dai, L.; Zhang, X.; Zhang, J. Concrete Cracking Prediction Including the Filling Proportion of Strand Corrosion Products. Materials 2017, 10, 6. https://doi.org/10.3390/ma10010006
Wang L, Dai L, Zhang X, Zhang J. Concrete Cracking Prediction Including the Filling Proportion of Strand Corrosion Products. Materials. 2017; 10(1):6. https://doi.org/10.3390/ma10010006
Chicago/Turabian StyleWang, Lei, Lizhao Dai, Xuhui Zhang, and Jianren Zhang. 2017. "Concrete Cracking Prediction Including the Filling Proportion of Strand Corrosion Products" Materials 10, no. 1: 6. https://doi.org/10.3390/ma10010006
APA StyleWang, L., Dai, L., Zhang, X., & Zhang, J. (2017). Concrete Cracking Prediction Including the Filling Proportion of Strand Corrosion Products. Materials, 10(1), 6. https://doi.org/10.3390/ma10010006