Influence of the Modulus of Elasticity of CFRPs on the Compressive Behavior of Confined Test Pieces and on the Flexural Behavior of Short Concrete Beams
Abstract
:1. Introduction
2. Model of Confined Concrete and Fiber Deformation Capacity Limit
2.1. Model of Confined Concrete
2.2. Fiber Deformation Capacity Limit
3. Materials and Methods
3.1. Confined Test Pieces
3.2. Short Beams
4. Discussion
4.1. Confined Test Pieces
4.2. Short Beams
5. Conclusions
- −
- In confined elements, the type of fracture and breaking load were very similar for both types of reinforcement, despite the enormous difference in rigidity of the fabrics providing confinement. The fault occurred due to the fracturing of fibers under tensile stress. For the purposes of breaking load in confined elements, the rigidity of the casing plays a secondary role.
- −
- After analyzing the data regarding confined elements using an ANOVA technique, it can be stated that the confinement of the material significantly increases compression resistance, but there were no differences in strength between both types of analyzed confinement.
- −
- In confined elements, the breaking loads obtained using the ACI and FIB models were very similar to those obtained through experiments on both types of test piece, and they remain on the conservative side when evaluated using the ACI model and on the uncertain side when the FIB model is used. Values of between 0.35 and 0.47 were obtained for the FIB model and between 0.67 and 0.85 for the ACI model as values for the reduction coefficient of the ultimate strain of the fiber, meaning that the analytical values match the experimental ones for HR and HM fabrics, respectively.
- −
- The experimental breaking load for confined test pieces was very similar for both types of reinforcement and was significantly higher than the breaking load for the unreinforced test pieces. The theoretical breaking load in confined test pieces was also very similar for both types of reinforcement and almost triple the experimental breaking load.
- −
- The experimental values obtained in short beams for the breaking load, maximum displacement, rigidity, and energy absorbed in the test were very similar and significantly exceeded those for the unreinforced beams.
- −
- After analysis of the results regarding the breaking load and the maximum displacement of short beams using an ANOVA technique, we found significant BHM–BRF and BHR–BRF treatment differences, whereas we cannot reject the hypothesis that the BHM and BHR averages are equal.
- −
- The theoretical breaking load for the beams reinforced using both procedures obtained using the rods and straps model was also very similar and almost triple the value of the theoretical breaking load. The values obtained for fabric strain, εf, suggest a fabric performance of 28–29%.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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ACI 440-17 | FIB |
---|---|
Material | Dosage (kg) |
---|---|
Cement | 346 |
Gravel | 879 |
Sand | 950 |
Water | 123 |
Plasticizer | 2.1 |
e (mm) | σr (MPa) | E (GPa) | εfu (%) | Fr (N/mm) | Kr (kN/mm) | |
---|---|---|---|---|---|---|
C-UNI-AX (HR) | 0.166 | 4830 | 230 | 2.1 | 801.8 | 38.2 |
C-UNI-AX-(HM) | 0.165 | 4410 | 390 | 1.1 | 727.6 | 64.3 |
Test Piece | Confinement | σr (MPa) | sσr (MPa) | Δσr (%) | |
---|---|---|---|---|---|
C1 | Non-confined | 44.6 | 46.5 | ||
C2 | 45.1 | 2.93 | - | ||
C3 | 49.9 | ||||
N1 | HR | 74.2 | 68.9 | ||
N2 | 67.6 | 4.74 | 1.48 | ||
N3 | 65.0 | ||||
H1 | HM | 70.0 | |||
H2 | 71.4 | 71.5 | 1.55 | 1.54 | |
H3 | 73.1 |
Experimental (MPa) | ACI (MPa) | K (ACI) | FIB (MPa) | K (FIB) | |
---|---|---|---|---|---|
HR | 68.9 | 64.8 | 0.67 | 78.4 | 0.35 |
HM | 71.5 | 62.6 | 0.85 | 75.3 | 0.47 |
Beam | Pmax | δmax | K | Gmax | ||||
---|---|---|---|---|---|---|---|---|
(kN) | (kN) | (mm) | (mm) | (kN/mm) | (kN/mm) | (kN∙mm) | (kN∙mm) | |
BRF1 | 46.6 | 6.8 | 0.77 | 0.62 | 160.7 | 180.9 | ||
BRF2 | 53.4 | 46.0 | 8.2 | 7.8 | 0.57 | 218.9 | ||
BRF3 | 37.9 | 8.5 | 0.52 | 163.0 | ||||
BHR4 | 112.8 | 113.3 | 12.8 | 12.4 | 1.1 | 1.0 | 723.8 | 704.8 |
BHR5 | 113.8 | 12.0 | 1.0 | 685.7 | ||||
BHM7 | 109.6 | 110.8 | 11.3 | 11.3 | 1.0 | 1.0 | 621.3 | 629.8 |
BHM8 | 113.5 | 10.9 | 1.0 | 620.4 | ||||
BHM9 | 109.4 | 11.8 | 1.0 | 647.6 |
Compared Levels | p-Value |
---|---|
BHM-BHR | 0.854 |
BHM-BRF | 6.98 × 10−5 *** |
BHR-BRF | 5.79 × 10−5 *** |
Compared Levels | p-Value |
---|---|
BHM-BHR | 0.27495 |
BHM-BRF | 0.00513 ** |
BHR-BRF | 0.00155 ** |
Beam | Pmax (kN) | Uf (kN) | Uth (kN) | Pth (kN) | U’th (kN) | P’th (kN) |
---|---|---|---|---|---|---|
BRF | 46.0 | 0 | 23.8/35.6 | 36.6/54.8 | 29.9 | 46.0 |
BHR | 114.0 | 160.4 | 184.2/196.0 | 283.2/301.3 | 190.3 | 292.6 |
BHM | 110.8 | 145.6 | 169.4/181.2 | 261.0/279.3 | 175.5 | 270.0 |
Pmax (kN) | Pf (kN) | Uf (kN) | A (%) | εf (%) | εf,ACI (%) | |
---|---|---|---|---|---|---|
BR | 46.0 | |||||
HR | 114.0 | 68 | 44.2 | 28 | 0.59 | 3.5 ≤ 1.9 |
HM | 110.8 | 64.8 | 44.1 | 29 | 0.32 | 2.7 ≤ 1.0 |
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Brizuela Valenzuela, D.; González García, M.d.l.N.; Cobo Escamilla, A. Influence of the Modulus of Elasticity of CFRPs on the Compressive Behavior of Confined Test Pieces and on the Flexural Behavior of Short Concrete Beams. Appl. Sci. 2021, 11, 491. https://doi.org/10.3390/app11020491
Brizuela Valenzuela D, González García MdlN, Cobo Escamilla A. Influence of the Modulus of Elasticity of CFRPs on the Compressive Behavior of Confined Test Pieces and on the Flexural Behavior of Short Concrete Beams. Applied Sciences. 2021; 11(2):491. https://doi.org/10.3390/app11020491
Chicago/Turabian StyleBrizuela Valenzuela, Daniela, María de las Nieves González García, and Alfonso Cobo Escamilla. 2021. "Influence of the Modulus of Elasticity of CFRPs on the Compressive Behavior of Confined Test Pieces and on the Flexural Behavior of Short Concrete Beams" Applied Sciences 11, no. 2: 491. https://doi.org/10.3390/app11020491
APA StyleBrizuela Valenzuela, D., González García, M. d. l. N., & Cobo Escamilla, A. (2021). Influence of the Modulus of Elasticity of CFRPs on the Compressive Behavior of Confined Test Pieces and on the Flexural Behavior of Short Concrete Beams. Applied Sciences, 11(2), 491. https://doi.org/10.3390/app11020491