Chloride Penetration at Cold Joints of Structural Members with Dissimilar Concrete Incorporating UHPC
Abstract
:1. Introduction
2. Experimental Study
2.1. Material Properties
2.2. Preparation of Samples
2.3. Methodology
3. Result and Discussion
3.1. Bond Strength
3.2. Chloride Penetration
4. Conclusions
- Concrete repair with UHPC generally exhibits improved bond strength which may be attributed to its good workability and high cement factor.
- The attained tensile strength of the soaked surface composite cylinders exceeds the tensile splitting strength of the plain NSC cylinders.
- Chloride penetration was generally observed as bulk transport but there was an indication that non-Fickian chloride transport can occur along the surface of the joint. There was a general indication that moisture transport through the cold joint depends on moisture levels.
- Microstructure measurement and further mechanism analysis should be performed in the future research.
Author Contributions
Acknowledgments
Conflicts of Interest
References
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Constituents | NSC | UHPC |
---|---|---|
Portland cement kg/m3) | 520 | 712 |
Fine aggregates (kg/m3) | 1007 | 1020 |
Coarse aggregates (kg/m3) | 545 | - |
Ground quartz (kg/m3) | - | 211 |
Silica fume (kg/m3) | - | 231 |
Air-entraining agent (%) | 6 | - |
Accelerator2 (kg/m3) | - | 30 |
Super plasticizer2 (kg/m3) | - | 30.7 |
Water (kg/m3) | 198 | 109 |
Water-to-Cement ratio | 0.39 | 0.2 |
Material | Compressive Strength | Tensile Strength | Slump | Static Flowability | Dynamic Flowability |
---|---|---|---|---|---|
NSC | 55 MPa | 4.8 MPa | 13 cm | - | - |
UHPC | 174 MPa | 9.6 MPa | - | 20 cm | 25 cm |
Moisture Content | Cl− Penetration Depth (mm) |
---|---|
0% RH | 8 |
11 | |
75% RH | 16 |
15 | |
100% RH | 5 |
4 | |
SOAKED | 76 |
69 |
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Farzad, M.; Fancy, S.F.; Lau, K.; Azizinamini, A. Chloride Penetration at Cold Joints of Structural Members with Dissimilar Concrete Incorporating UHPC. Infrastructures 2019, 4, 18. https://doi.org/10.3390/infrastructures4020018
Farzad M, Fancy SF, Lau K, Azizinamini A. Chloride Penetration at Cold Joints of Structural Members with Dissimilar Concrete Incorporating UHPC. Infrastructures. 2019; 4(2):18. https://doi.org/10.3390/infrastructures4020018
Chicago/Turabian StyleFarzad, Mahsa, Saiada Fuadi Fancy, Kingsley Lau, and Atorod Azizinamini. 2019. "Chloride Penetration at Cold Joints of Structural Members with Dissimilar Concrete Incorporating UHPC" Infrastructures 4, no. 2: 18. https://doi.org/10.3390/infrastructures4020018
APA StyleFarzad, M., Fancy, S. F., Lau, K., & Azizinamini, A. (2019). Chloride Penetration at Cold Joints of Structural Members with Dissimilar Concrete Incorporating UHPC. Infrastructures, 4(2), 18. https://doi.org/10.3390/infrastructures4020018