Curing Effect on Durability of Cement Mortar with GGBS: Experimental and Numerical Study
Abstract
:1. Introduction
2. Materials and Method
2.1. Samples
2.2. Curing and Drying
- Standard curing: samples were at C and a relative humidity (R.H.) ≥ 90%.
- Dry curing: samples were at C and R.H. < 50%.
- Cold curing: samples were at C and R.H. ≥ 90%.
2.3. Measuring Porosity and Gas Permeability
2.4. Measuring Water Absorption
3. Modeling Approach
3.1. Mathematical Flow Model
3.2. Bayesian Inference
3.3. MCMC Sampling Procedure
Algorithm 1 Metropolis-Hastings algorithm. |
|
4. Results and Discussion
4.1. Influence of Curing Conditions and GGBS Proportions on the Porosity
4.2. Influence of Curing Conditions and GGBS Proportions on the Permeability
4.3. Influence of Curing Conditions and GGBS Proportions on the Water Absorption
4.4. Forward and Inverse Modeling
4.5. Analysis of the MCMC Estimates
5. Conclusions
- Among the selected curing conditions, the performance of the standard curing condition is better than that of other curing conditions. Minimum porosity, intrinsic permeability, and water absorption were measured in samples cured in standard conditions, while maximum values were found in samples cured in dry conditions.
- Samples containing of GGBS cured in standard condition slightly enhanced the porosity by as compared to the reference sample. The porosity variation between the cold and standard cures was not that significant. On the other hand, the dry-cured samples didn’t show any improvement, whatever the replacement level of GGBS. Porosity values increased with an increase in GGBS content.
- The permeability was improved by with the inclusion of of GGBS in the standard curing samples. All other samples presented higher permeability values compared to the reference sample. Cold curing samples showed a significant decrease in permeability values with an increase in GGBS replacement, while the opposite tendency was observed for dry curing samples.
- In terms of water absorption, maximum improvement of was found in samples cured in standard condition with of GGBS. With a further increase in GGBS replacement, standard curing samples exhibited almost a similar water absorption to that of the reference sample. For cold-curing samples with of GGBS, we also observed a little improvement of . Beyond , a slight drop in water absorption resistance was noticed. Ultimately, dry curing samples revealed a significant increase in water absorption with an increase in GGBS content.
- Numerical inverse modeling showed a good agreement between measured and estimated intrinsic permeability. Moreover, the simulated cumulative weights of the samples over time fitted well with those measured. The corresponding average RMSE is around . Such promising results demonstrate the capability of the proposed inference approach to accurately predict the hydraulic parameters of the samples from extremely short capillary suction experiments and simulate water flow through mortar samples.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Material | SiO | AlO | FeO | CaO | NaO | KO | MgO | SO |
---|---|---|---|---|---|---|---|---|
CEM I 52.5 N | 20.1 | 4.8 | 3.4 | 63.6 | 0.1 | 1.0 | 1.3 | 3.1 |
GGBS | 36.2 | 11.5 | 0.3 | 41.3 | 0.1 | 0.4 | 7.3 | 3.7 |
Mix | Cement (kg/m) | GGBS (kg/m) | Water (kg/m) | Sand (kg/m) | w/c |
---|---|---|---|---|---|
CEM-GGBS 0% | 450 | 0 | 202.5 | 1350 | 0.45 |
CEM-GGBS 45% | 247.5 | 202.5 | 202.5 | 1350 | 0.45 |
CEM-GGBS 60% | 180 | 270 | 202.5 | 1350 | 0.45 |
CEM-GGBS 80% | 90 | 360 | 202.5 | 1350 | 0.45 |
Sample | m | m | Pa | m | |
---|---|---|---|---|---|
Experimental | Numerical | ||||
CEM-GGBS 0% | 1.44 | 1.45 | 7.19 | 0.156 | 6.4 |
CEM-GGBS 45% | 1.20 | 1.16 | 6.79 | 0.125 | 5.3 |
CEM-GGBS 60% | 1.70 | 1.71 | 8.17 | 0.150 | 4.9 |
CEM-GGBS 80% | 2.80 | 2.84 | 9.02 | 0.116 | 8.5 |
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Ghostine, R.; Bur, N.; Feugeas, F.; Hoteit, I. Curing Effect on Durability of Cement Mortar with GGBS: Experimental and Numerical Study. Materials 2022, 15, 4394. https://doi.org/10.3390/ma15134394
Ghostine R, Bur N, Feugeas F, Hoteit I. Curing Effect on Durability of Cement Mortar with GGBS: Experimental and Numerical Study. Materials. 2022; 15(13):4394. https://doi.org/10.3390/ma15134394
Chicago/Turabian StyleGhostine, Rabih, Nicolas Bur, Françoise Feugeas, and Ibrahim Hoteit. 2022. "Curing Effect on Durability of Cement Mortar with GGBS: Experimental and Numerical Study" Materials 15, no. 13: 4394. https://doi.org/10.3390/ma15134394
APA StyleGhostine, R., Bur, N., Feugeas, F., & Hoteit, I. (2022). Curing Effect on Durability of Cement Mortar with GGBS: Experimental and Numerical Study. Materials, 15(13), 4394. https://doi.org/10.3390/ma15134394