Long-Term Concrete Shrinkage Influence on the Performance of Reinforced Concrete Structures
Abstract
:1. Introduction
1.1. Theoretical Background
1.2. Theoretical Background on the Assessment of the Shrinkage-Free Tension Stiffening Phenomenon
- (1)
- “Assumed origin O” which is the starting point of an RC tie test whenever the concrete shrinkage effects are ignored, which is how the majority of tests have been up until the present);
- (2)
- “Experimental origin Oexp” which identifies the starting point of the RC tie test (external load P = 0) except this time acknowledging the compressive effect of shrinkage on the member strains (henceforth referred to as εm,sh) as in Figure 1;
- (3)
- “Shrinkage-free origin O*” which identifies the true origin of the RC tie test. This time, shrinkage elimination does not apply only to the deformative response but also to the applied load. Indeed, the initial aftermath of the application of an external load P is simply the compensation of the abovementioned shrinkage-induced compression, henceforth referred to as (as in Figure 1).
2. Experimental Campaign
3. Results and Discussion
3.1. Standard Test Behavior of an RC Tie
3.2. Test Results
3.3. Experiemental Tension Stiffening and Shrinkrage-Free Tension Stiffenning Relationships
4. Statistical Analysis
5. Conclusions
- (1)
- The accumulated shrinkage strain during 5.3 years was quite significant and capable of making serious impact on the load–deformative behavior of the member as well as on their tension stiffening behaviors;
- (2)
- The shrinkage effect lowered the apparent RC member cracking load. This underestimation increased with the increase in reinforcement ratio (25% for ρ = 1.13% and 38% for ρ = 1.86%);
- (3)
- The shrinkage effect caused an apparent reduction of the tension stiffening mechanism on an average of 40% for a lower reinforcement ratio (ρ = 1.13%) and about 80% for a higher one (ρ = 1.86%);
- (4)
- After the process of shrinkage elimination, the tension stiffening behaviors of members with different reinforcement ratios were in good agreement with each other, confirming the influence of the reinforcement ratio on the alteration of the tension stiffening effect;
- (5)
- A statistical analysis on the tension stiffening-predicted power of the EC2 and MC2010 model codes against the experimental and shrinkage-free results showed an overall increase in relative error proportional to the strain level increase;
- (6)
- The predictions of both codes displayed a much smaller relative error (66%) when compared against the shrinkage-free tension stiffening results than against the experimental one;
- (7)
- According to the literature review, the previous point does not occur for short-term shrinkage, thus suggesting the increased accuracy of the model for members that include very long-term shrinkage.
- (8)
- Among the predictions of the two models, the MC2010 one exhibited a slightly closer match to the raw test result, whereas the EC2 predictions were marginally more accurate to the shrinkage-free tension stiffening.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Specimen Assigned Code | Number of Samples | h × b × L | Φs | ρs | fcm | Ec | fsy | Es |
---|---|---|---|---|---|---|---|---|
mm | mm | % | MPa | MPa | MPa | MPa | ||
T_12_500 | 4 | 100 × 100 × 655 | 12 | 1.13 | 47.6 | 32,857 | 500 | 198,900 |
T_10_500 | 2 | 65 × 65 × 650 | 10 | 1.86 | 208,400 | |||
T_12_800 | 3 | 100 × 100 × 655 | 12 | 1.13 | 800 | 190,000 | ||
T_10_800 | 5 | 65 × 65 × 650 | 10 | 1.86 | 198,700 |
Specimen Geometry | Time (days) | εsh According to the EC2 | εsh According to the MC2010 |
---|---|---|---|
100 × 100 × 655 | 1947 | −0.000715 | −0.000699 |
65 × 65 × 650 | 1947 | −0.000722 | −0.000729 |
Model | Results Processing | Statistical Parameter | Strain Ratio | |||
---|---|---|---|---|---|---|
0% (εcr) | 33% | 66% | 100% (εsy) | |||
EC2 | Experimental | Mean relative error (Re. Er.) | 0.416 | 1.064 | 1.561 | 2.078 |
Standard deviation (St. Dev.) | 0.156 | 0.295 | 0.586 | 0.976 | ||
Shrinkage-free | Mean Re. Er. | 0.231 | 0.324 | 0.488 | 0.698 | |
St. Dev. | 0.112 | 0.199 | 0.336 | 0.493 | ||
MC2010 | Experimental | Mean Re. Er. | 0.470 | 0.944 | 1.294 | 1.644 |
St. Dev. | 0.209 | 0.250 | 0.313 | 0.445 | ||
Shrinkage-free | Mean Re. Er. | 0.331 | 0.275 | 0.533 | 0.884 | |
St. Dev. | 0.211 | 0.189 | 0.289 | 0.376 |
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Dey, A.; Vastrad, A.V.; Bado, M.F.; Sokolov, A.; Kaklauskas, G. Long-Term Concrete Shrinkage Influence on the Performance of Reinforced Concrete Structures. Materials 2021, 14, 254. https://doi.org/10.3390/ma14020254
Dey A, Vastrad AV, Bado MF, Sokolov A, Kaklauskas G. Long-Term Concrete Shrinkage Influence on the Performance of Reinforced Concrete Structures. Materials. 2021; 14(2):254. https://doi.org/10.3390/ma14020254
Chicago/Turabian StyleDey, Alinda, Akshay Vijay Vastrad, Mattia Francesco Bado, Aleksandr Sokolov, and Gintaris Kaklauskas. 2021. "Long-Term Concrete Shrinkage Influence on the Performance of Reinforced Concrete Structures" Materials 14, no. 2: 254. https://doi.org/10.3390/ma14020254
APA StyleDey, A., Vastrad, A. V., Bado, M. F., Sokolov, A., & Kaklauskas, G. (2021). Long-Term Concrete Shrinkage Influence on the Performance of Reinforced Concrete Structures. Materials, 14(2), 254. https://doi.org/10.3390/ma14020254