Effectiveness of Strengthening RC Beams Using Composite Materials—An Accelerated Strengthening Method
Abstract
:1. Introduction
2. Materials and Method 1
2.1. Evaluation of the Possibility of Accelerating Strengthening Time Using CFRP Strips in the NSMR Method
2.1.1. Accelerated Strengthening Procedure—Components Used
2.1.2. Testing
2.1.3. Result 1
- the use of strip heating in the NSMR method significantly reduces the adhesive hardening process from 7 days to 1.5 h, thereby reducing the duration of the entire component strengthening process;
- the adhesive cure time of 1.5 h and a strip heating temperature of 70 °C are optimal for strengthening RC elements with near surface mounted CFRP strips; the prototype heating device used in the study makes it possible to significantly reduce the adhesive cure time.
3. Materials and Method 2
3.1. Research on the Effectiveness of Strengthening Reinforced Concrete Beams Using the Optimal Temperature and Time of Heating CFRP Strips
3.1.1. Test Stand
3.1.2. Tested Elements
3.1.3. Loading Program and Strengthening of Elements
4. Results 2
4.1. Beam Failure Mechanism
4.2. Strengthening Level of the Beams
4.3. Effect of Heating the Strip—Accelerated Strengthening Process
5. Discussion
- Strengthening RC beams under load on soffits in the NSM method increases the failure load compared to non-strengthened beams.
- The use of strip heating reduces the adhesive cure time.
- The strip heating temperature of 70 °C established in the research can be taken as the optimal temperature used to reduce the adhesive cure time.
- A temperature of 70 °C maintained while heating the strips for 1.5 h is sufficient to effectively reduce adhesive cure time.
- Reducing the adhesive cure time by heating the composite strip results in satisfactory strengthening efficiency.
- Increased breaking load was observed in the case of both methods (accelerated and non-accelerated).
- The efficiency of strengthening RC beams with and without heating composite strips for bonding in the NSM method depends on the steel reinforcement ratio.
- Strip heating significantly increases the strengthening level compared to that of beams where no heating was used.
- The use of strip heating during strengthening of RC beams increases the value of deflections at the load level corresponding to the breaking force in relation to the deflections of strengthened beams where heating was not used. This confirms the achievement of greater reinforcement efficiency with the accelerated strengthening method.
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Series | Elements | Adhesive Cure Time [h] | Adhesive Cure Temperature [℃] |
---|---|---|---|
1 1 | A1÷A3 | - | - |
2 | B1÷B3 | 1.5 | 60 |
3 | C1÷C3 | 1.5 | 70 |
4 | D1÷D3 | 1.5 | 80 |
5 | E1÷E3 | 168.0 (7 days) | - |
Series | Tested Elements | FN [kN] 1 | MN [kNm] 2 | MNśr [kNm] 3 | ηu |
---|---|---|---|---|---|
1 | A1 | 10.9 | 1.36 | 1.40 | - |
A2 | 11.5 | 1.44 | |||
A3 | 11.3 | 1.41 | |||
2 | B1 | 44.6 | 5.58 | 5.90 | 3.20 |
B2 | 48.8 | 6.10 | |||
B3 | 48.1 | 6.01 | |||
3 | C1 | 54.9 | 6.86 | 6.90 | 3.92 |
C2 | 56.9 | 7.11 | |||
C3 | 53.9 | 6.74 | |||
4 | D1 | 51.8 | 6.48 | 6.75 | 3.81 |
D2 | 56.8 | 7.10 | |||
D3 | 53.5 | 6.69 | |||
5 | E1 | 59.5 | 7.44 | 7.35 | 4.23 |
E2 | 57.5 | 7.19 | |||
E3 | 59.3 | 7.41 |
Series | Beams | Rebar in Compression/Tension | CFRP Strip n × tf × bf [mm] | Adhesive Cure Time [h] | Adhesive Cure Temperature [℃] |
---|---|---|---|---|---|
1 | R1 | 2#8/2#10 1 | - | - | - |
A1W1 | 1 × 10 × 3.0 | 1.5 | 70 | ||
A1W2 | 1 × 20 × 2.5 | 1.5 | 70 | ||
C1.1W1 | 1 × 10 × 3.0 | 168.0 (7 days) | 23 | ||
C1W2 | 1 × 20 × 2.5 | 168.0 (7 days) | 23 | ||
2 | R2 | 2#8/2#14 1 | - | - | - |
A2W1 | 1 × 10 × 3.0 | 1.5 | 70 | ||
A2W2 | 1 × 20 × 2.5 | 1.5 | 70 | ||
C2W1 | 1 × 10 × 3.0 | 168.0 (7 days) | 23 | ||
C2.1W2 | 1 × 20 × 2.5 | 168.0 (7 days) | 23 |
Series | Elements | ρs [%] | ρf [%] | FN [kN] | MN [kNm] | ηu |
---|---|---|---|---|---|---|
1 | R1 | 0.51 | - | 22.61 | 22.61 | - |
A1W1 | 0.08 | 40.65 | 40.65 | 0.80 | ||
A1W2 | 0.14 | 41.34 | 41.34 | 0.83 | ||
C1.1W1 | 0.08 | 34.89 | 34.89 | 0.54 | ||
C1W2 | 0.14 | 44.02 | 44.02 | 0.95 | ||
2 | R2 | 1.00 | - | 41.06 | 41.06 | - |
A2W1 | 0.08 | 54.54 | 54.54 | 0.33 | ||
A2W2 | 0.14 | 59.97 | 59.97 | 0.46 | ||
C2W1 | 0.08 | 50.69 | 50.69 | 0.23 | ||
C2.1W2 | 0.14 | 56.72 | 56.72 | 0.38 |
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Michałowska-Maziejuk, D.; Goszczyńska, B. Effectiveness of Strengthening RC Beams Using Composite Materials—An Accelerated Strengthening Method. Materials 2023, 16, 4847. https://doi.org/10.3390/ma16134847
Michałowska-Maziejuk D, Goszczyńska B. Effectiveness of Strengthening RC Beams Using Composite Materials—An Accelerated Strengthening Method. Materials. 2023; 16(13):4847. https://doi.org/10.3390/ma16134847
Chicago/Turabian StyleMichałowska-Maziejuk, Dorota, and Barbara Goszczyńska. 2023. "Effectiveness of Strengthening RC Beams Using Composite Materials—An Accelerated Strengthening Method" Materials 16, no. 13: 4847. https://doi.org/10.3390/ma16134847
APA StyleMichałowska-Maziejuk, D., & Goszczyńska, B. (2023). Effectiveness of Strengthening RC Beams Using Composite Materials—An Accelerated Strengthening Method. Materials, 16(13), 4847. https://doi.org/10.3390/ma16134847