Bonding of Carbon Steel Bars in Concrete Produced with Recycled Aggregates: A Systematic Review of the Literature
Abstract
:1. Introduction
Research Significance
2. Materials and Methods
2.1. Systematic Review
2.2. Bibliographic Analysis
2.2.1. Journals’ Relevance and Papers’ Scientific Recognition
2.2.2. Author’s Relevance
2.2.3. Keywords
2.3. Methodology Quality Analysis
3. Results and Discussion
3.1. Which Replacement Content Led to the Best Results in the Bond Strength of Carbon Steel Bars in CDW-Concrete?
3.2. What Are the Main Characteristics of the Carbon Steel Bars and the Anchorage Length Employed in the Study of Adherence with CDW-Concrete?
3.3. What Is the Environmental Perspective Regarding Using CDW Recycled Aggregates in Reinforced Concrete Structures?
4. Conclusions
- i.
- A replacement content of natural aggregates by recycled ones that would lead to excellent results of bond strength between steel bars and CDW-concrete was not identified in the selected literature. On the contrary, most of the manuscripts indicated the worsening of bond strength compared to conventional concrete;
- ii.
- Carbon steel bars with a ribbed surface were the most employed in the selected bibliography and they seem to be the best option when employed in RC structures built with CDW-concrete. Furthermore, diameters between 8 mm and 30 mm were employed in the studies, with bars with diameters smaller than 8 mm being employed in only two articles. This wide range of diameters led to varied anchorage lengths used in pull-out tests, but the influence of this parameter on steel–concrete bonding still needs to be better understood. This topic can be used for further research;
- iii.
- From an environmental standpoint, the use of CDW as recycled aggregates in concrete needs to be encouraged, since remarkable advances have been obtained in recent studies. Specifically, it can reduce incorrect disposal of CDW and discourage the use of landfills, which emit greenhouse gases, and also capture CO2 from the atmosphere, an eco-friendly alternative.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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---|---|---|---|
[31] | Tests and simulation of the bond-slip between steel and concrete with recycled aggregates from CDW | Buildings | 2021 |
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[39] | Bond behavior of steel bar embedded in recycled coarse aggregate concrete under lateral compression load | Construction and Building Materials | 2017 |
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[41] | Steel–concrete bond behaviour of self-compacting concrete with recycled aggregates | Magazine of Concrete Research | 2016 |
[42] | Bond strength prediction for deformed steel rebar embedded in recycled coarse aggregate concrete | Materials & Design | 2015 |
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[44] | Bond strength of deformed steel bars in high-strength recycled aggregate concrete | Materials and Structures | 2015 |
[45] | Bond behavior between steel reinforcement and recycled concrete | Construction and Building Materials | 2014 |
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Reference | Journal | Classification | JCR |
---|---|---|---|
[46] | Cement and Concrete Composites | A1 | 9.930 |
[42] | Materials & Design | A1 | 9.417 |
[37] | Construction and Building Materials | A1 | 7.693 |
[39] | Construction and Building Materials | A1 | 7.693 |
[45] | Construction and Building Materials | A1 | 7.693 |
[48] | Construction and Building Materials | A1 | 7.693 |
[49] | Construction and Building Materials | A1 | 7.693 |
[36] | Journal of Sustainable Cement-Based Materials | - | 5.328 |
[38] | Journal of Sustainable Cement-Based Materials | - | 5.328 |
[43] | Cold Regions Science and Technology | - | 4.427 |
[33] | Materials and Structures | A1 | 4.285 |
[44] | Materials and Structures | A1 | 4.285 |
[47] | Materials and Structures | A1 | 4.285 |
[32] | Structures | B4 | 4.010 |
[35] | Structures | B4 | 4.010 |
[40] | Structures | B4 | 4.010 |
[31] | Buildings | - | 3.324 |
[41] | Magazine of Concrete Research | A2 | 2.460 |
[50] | Canadian Journal of Civil Engineering | A2 | 1.771 |
[34] | Journal of Engineering and Technological Sciences | - | - |
Item | Description | ||
---|---|---|---|
I | Randomization | Evidence of randomness in the production and testing of the samples involved | |
II | Analysis | Basic | Use of mean and standard deviation to characterize the sample elements |
Statistic | Use of inferential statistics to characterize the method | ||
III | Comparison | Basic | Comparison with reference elements (or samples) |
Median | Comparison with similar studies without indication of origin (systematic review) | ||
Advanced | Comparison with similar studies from a systematic review | ||
Statistic | Use of inferential statistics for comparison with systematic review studies |
Reference | Replacement Content | Bar Type | Bar Diameter (mm) | Anchorage Length (mm) | Bond Test | Main Conclusions |
---|---|---|---|---|---|---|
[31] | 10% FA or CA 50% FA or CA 100% FA or CA | Ribbed | 12.00 | 8 d | Pull-out |
|
[32] | 100% FA | (i) Ribbed (ii) Epoxi-coated and ribbed | (i) 16.00, (ii) 16.00 + 0.17 (epoxi) | 3 d 5 d 8 d | Pull-out |
|
[33] | 10% CA 20% CA 50% CA 100% CA | Ribbed | 16.00 | 3 d | Pull-out |
|
[34] | 50% CA 100% CA | Ribbed | 12.00, 16.00, 22.00, 25.00 | 5 d 12 d | Push-out |
|
[35] | 30% CA 50% CA 100% CA | Ribbed | 14.00 | 5.7 d | Pull-out |
|
[36] | 50% CA | Ribbed | 12.00 | 5 d | Pull-out |
|
[37] | 30% CA 50% CA | Ribbed | 16.00 | 5 d | Pull-out |
|
[38] | 50% CA 100% CA | Ribbed | 12.00, 20.00 | 60—500 d | Four-pointflexural |
|
[39] | 30% CA | (i) Smooth (ii) Ribbed | (i) 12.00 (ii) 14.00, 18.00, 22.00 | 5 d | Pull-out |
|
[40] | 30% CA 40% CA 50% CA | Ribbed | 11.00, 16.00, 19.50 | 5 d 10 d | Push-out |
|
[41] | 25% CA 50% CA 100% CA | (i) Ribbed (ii) Smooth | (i) 16.00, (ii) 10.00 | 5 d | Pull-out |
|
[42] | 30% CA 60% CA 100% CA | Ribbed | 16.00 | 4 d | Pull-out |
|
[43] | 30% CA | (i) Smooth (ii) Ribbed | (i) 12.00 (ii) 14.00, 18.00, 22.00 | 5 d | Pull-out |
|
[44] | 25% CA 50% CA 75% CA 100% CA | Ribbed | 8.00, 10.00 | 5 d | Pull-out |
|
[45] | 25% CA 50% CA 100% CA | Ribbed | 10.00 | 5 d | Pull-out |
|
[46] | 30% FA 60% FA 100% FA | Ribbed | 16.00 | 4 d | Pull-out |
|
[47] | 25% CA 50% CA 75% CA 100% CA | Ribbed | 8.00, 10.00 | 5 d | Pull-out |
|
[48] | 100% CA | Ribbed | 12.00, 16.00, 20.00, 25.00 | 5 d | Beam-end |
|
[49] | 50% CA 100% CA | Ribbed | 14.00 | 5 d | Pull-out |
|
[50] | 100% CA | Ribbed | 16.00, 30.00 | 250—320 d | Pull-out |
|
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Reis, E.D.; Gomes, H.C.; de Azevedo, R.C.; Poggiali, F.S.J.; Bezerra, A.C.d.S. Bonding of Carbon Steel Bars in Concrete Produced with Recycled Aggregates: A Systematic Review of the Literature. C 2022, 8, 76. https://doi.org/10.3390/c8040076
Reis ED, Gomes HC, de Azevedo RC, Poggiali FSJ, Bezerra ACdS. Bonding of Carbon Steel Bars in Concrete Produced with Recycled Aggregates: A Systematic Review of the Literature. C. 2022; 8(4):76. https://doi.org/10.3390/c8040076
Chicago/Turabian StyleReis, Elvys Dias, Henrique Comba Gomes, Rogério Cabral de Azevedo, Flávia Spitale Jacques Poggiali, and Augusto Cesar da Silva Bezerra. 2022. "Bonding of Carbon Steel Bars in Concrete Produced with Recycled Aggregates: A Systematic Review of the Literature" C 8, no. 4: 76. https://doi.org/10.3390/c8040076
APA StyleReis, E. D., Gomes, H. C., de Azevedo, R. C., Poggiali, F. S. J., & Bezerra, A. C. d. S. (2022). Bonding of Carbon Steel Bars in Concrete Produced with Recycled Aggregates: A Systematic Review of the Literature. C, 8(4), 76. https://doi.org/10.3390/c8040076