Figure 1.
Particle size distribution of the cement, limestone and fly ash used in the research.
Figure 1.
Particle size distribution of the cement, limestone and fly ash used in the research.
Figure 2.
Amount of air-entraining admixture for (a) vibrated and (b) self-compacting concrete to obtain 6% ± 1% of air content in the concrete mix.
Figure 2.
Amount of air-entraining admixture for (a) vibrated and (b) self-compacting concrete to obtain 6% ± 1% of air content in the concrete mix.
Figure 3.
Superplasticizer amount for (a) vibrated concrete, (b) self-compacting concrete.
Figure 3.
Superplasticizer amount for (a) vibrated concrete, (b) self-compacting concrete.
Figure 4.
Mass loss of (a) vibrated and (b) self-compacting concrete without air-entraining admixture, after 100 freeze–thaw cycles.
Figure 4.
Mass loss of (a) vibrated and (b) self-compacting concrete without air-entraining admixture, after 100 freeze–thaw cycles.
Figure 5.
Mass loss of (a) vibrated and (b) self-compacting concrete with air-entraining admixture after 100 freeze–thaw cycles.
Figure 5.
Mass loss of (a) vibrated and (b) self-compacting concrete with air-entraining admixture after 100 freeze–thaw cycles.
Figure 6.
Mass loss of (a) vibrated and (b) self-compacting concrete with air-entraining admixture after 200 freeze–thaw cycles.
Figure 6.
Mass loss of (a) vibrated and (b) self-compacting concrete with air-entraining admixture after 200 freeze–thaw cycles.
Figure 7.
Compressive strength of (a) vibrated concrete and (b) self-compacting concrete, both without air-entraining admixture, with (c) ANOVA analysis of the effect of using limestone.
Figure 7.
Compressive strength of (a) vibrated concrete and (b) self-compacting concrete, both without air-entraining admixture, with (c) ANOVA analysis of the effect of using limestone.
Figure 8.
Compressive strength of (a) vibrated concrete and (b) self-compacting concrete, both with air-entraining admixture, with (c) ANOVA analysis of the effect of using limestone.
Figure 8.
Compressive strength of (a) vibrated concrete and (b) self-compacting concrete, both with air-entraining admixture, with (c) ANOVA analysis of the effect of using limestone.
Figure 9.
Strength loss for (a) vibrated concrete and (b) self-compacting concrete, both without air-entraining admixture.
Figure 9.
Strength loss for (a) vibrated concrete and (b) self-compacting concrete, both without air-entraining admixture.
Figure 10.
Strength loss for (a) vibrated concrete and (b) self-compacting concrete, both with air-entraining admixture.
Figure 10.
Strength loss for (a) vibrated concrete and (b) self-compacting concrete, both with air-entraining admixture.
Figure 11.
ANOVA analysis of the effect of limestone type on the compressive strength for reference samples (REF) and samples after 100 cycles of freeze–thaw (FT) for (a) vibrated concretes without AEA, (b) SCC without AEA, (c) vibrated concretes with AEA, (d) SCC with AEA.
Figure 11.
ANOVA analysis of the effect of limestone type on the compressive strength for reference samples (REF) and samples after 100 cycles of freeze–thaw (FT) for (a) vibrated concretes without AEA, (b) SCC without AEA, (c) vibrated concretes with AEA, (d) SCC with AEA.
Figure 12.
ANOVA analysis of the amount of limestone on the compressive strength for reference samples (REF) and samples after 100 cycles of freeze–thaw (FT) for (a) vibrated concretes without AEA, (b) SCC without AEA, (c) vibrated concretes with AEA, (d) SCC with AEA.
Figure 12.
ANOVA analysis of the amount of limestone on the compressive strength for reference samples (REF) and samples after 100 cycles of freeze–thaw (FT) for (a) vibrated concretes without AEA, (b) SCC without AEA, (c) vibrated concretes with AEA, (d) SCC with AEA.
Figure 13.
ANOVA analysis of the effect of concrete type on the compressive strength for reference samples and samples after 100 cycles of freeze–thaw for (a) concretes without AEA and (b) concretes with AEA.
Figure 13.
ANOVA analysis of the effect of concrete type on the compressive strength for reference samples and samples after 100 cycles of freeze–thaw for (a) concretes without AEA and (b) concretes with AEA.
Figure 14.
Compressive strength of (a) vibrated concrete and (b) self-compacting concrete, both with air-entraining admixture.
Figure 14.
Compressive strength of (a) vibrated concrete and (b) self-compacting concrete, both with air-entraining admixture.
Figure 15.
Strength loss for (a) vibrated concrete and (b) self-compacting concrete, both with air-entraining admixture.
Figure 15.
Strength loss for (a) vibrated concrete and (b) self-compacting concrete, both with air-entraining admixture.
Figure 16.
ANOVA analysis of the effect of limestone type on the compressive strength of reference concrete (REF) and concrete after 200 cycles of freeze–thaw (FT) for (a) vibrated concretes, (b) SCC.
Figure 16.
ANOVA analysis of the effect of limestone type on the compressive strength of reference concrete (REF) and concrete after 200 cycles of freeze–thaw (FT) for (a) vibrated concretes, (b) SCC.
Figure 17.
ANOVA analysis of the effect of limestone content on the compressive strength of reference concrete (REF) and concrete after 200 cycles of freeze–thaw (FT) for (a) vibrated concretes, (b) SCC.
Figure 17.
ANOVA analysis of the effect of limestone content on the compressive strength of reference concrete (REF) and concrete after 200 cycles of freeze–thaw (FT) for (a) vibrated concretes, (b) SCC.
Table 1.
Composition of materials used in the research.
Table 1.
Composition of materials used in the research.
Constituent | Content, % Mass |
---|
CEM I 42,5R | Limestone L1 | Limestone L2 | Limestone L3 |
---|
SiO2 | 19.9 | 1.4 | 3.6 | 4.58 |
Al2O3 | 6.2 | 0.4 | 0.5 | 0.75 |
Fe2O3 | 2.7 | 0.5 | 0.4 | 0.34 |
CaO | 62.6 | 53.2 | 53.55 | 52.43 |
MgO | 1.5 | 1.5 | 0.7 | 0.66 |
Na2O | 0.33 | - | - | - |
K2O | 0.72 | - | - | - |
Na2Oeq | 0.8 | - | - | - |
SO3 | 2.6 | 0.02 | 0.02 | 0.12 |
Cl | 0.05 | 0.007 | 0.006 | 0.022 |
LOI | 2.9 | 42.7 | 41.2 | 41.7 |
Table 2.
Composition of 1 m3 of vibrated concrete with no air-entraining admixture.
Table 2.
Composition of 1 m3 of vibrated concrete with no air-entraining admixture.
| Regular Concrete |
---|
V-REF | V-L1-15 | V-L1-30 | V-L2-15 | V-L2-30 | V-L3-15 | V-L3-30 |
---|
CEM I 42.5 (kg) | 340 | 330 | 320 | 330 | 320 | 330 | 320 |
Additive (kg) | 0 | 49.5 | 96 | 49.5 | 96 | 49.5 | 96 |
Water (kg) | 187 | 181.5 | 176 | 181.5 | 176 | 181.5 | 176 |
Superplasticizer (kg) | 0.331 | 0.325 | 1.758 | 0.323 | 1.760 | 0.324 | 1.978 |
Sand 0–2 (kg) | 559 | 551 | 544 | 551 | 544 | 551 | 544 |
Aggregate 2–8 (kg) | 559 | 551 | 544 | 551 | 544 | 551 | 544 |
Aggregate 8–16 (kg) | 745 | 735 | 725 | 735 | 725 | 735 | 725 |
Table 3.
Composition of 1 m3 of vibrated concrete with air-entraining admixture.
Table 3.
Composition of 1 m3 of vibrated concrete with air-entraining admixture.
| Regular Concrete with AEA |
---|
V-REF-AE | V-L1-15-AE | V-L1-30-AE | V-L2-15-AE | V-L2-30-AE | V-L3-15-AE | V-L3-30-AE |
---|
CEM I 42.5 (kg) | 354 | 335 | 313 | 337 | 319 | 337 | 317 |
Additive (kg) | 0 | 49.5 | 96 | 49.5 | 96 | 49.5 | 96 |
Water (kg) | 171 | 162 | 153 | 162 | 153 | 162 | 153 |
Superplasticizer (kg) | 1.2 | 1.2 | 3.7 | 1.21 | 4.09 | 1.24 | 2.73 |
Air-entraining admixture (kg) | 0.26 | 0.26 | 0.3 | 0.31 | 0.71 | 1.08 | 0.56 |
Sand 0–2 (kg) | 523 | 557 | 555 | 557 | 555 | 557 | 555 |
Aggregate 2–8 (kg) | 523 | 557 | 555 | 557 | 555 | 557 | 555 |
Aggregate 8–16 (kg) | 698 | 743 | 740 | 743 | 740 | 743 | 740 |
Table 4.
Composition of 1 m3 of self-compacting concrete without air-entraining admixture.
Table 4.
Composition of 1 m3 of self-compacting concrete without air-entraining admixture.
| Self-Compacting Concrete |
---|
SC-REF | SC-L1-15 | SC-L1-30 | SC-L2-15 | SC-L2-30 | SC-L3-15 | SC-L3-30 |
---|
CEM I 42.5 (kg) | 405 | 380 | 360 | 380 | 360 | 380 | 360 |
Additive (kg) | 0 | 57 | 108 | 57 | 108 | 57 | 108 |
Water (kg) | 202.5 | 190 | 180 | 190 | 180 | 190 | 180 |
Superplasticizer (kg) | 3.80 | 10.89 | 13.53 | 10.95 | 11.79 | 10.95 | 11.3 |
Sand 0–2 (kg) | 689 | 688 | 684 | 688 | 684 | 688 | 684 |
Aggregate 2–8 (kg) | 1078 | 1076 | 1071 | 1076 | 1071 | 1076 | 1071 |
Table 5.
Composition of 1 m3 of self-compacting concrete with air-entraining admixture.
Table 5.
Composition of 1 m3 of self-compacting concrete with air-entraining admixture.
| Self-Compacting Concrete with Air-Entraining Admixture |
---|
SC-REF-AE | SC-L1-15-AE | SC-L1-30-AE | SC-L2-15-AE | SC-L2-30-AE | SC-L3-15-AE | SC-L3-30-AE |
---|
CEM I 42.5 (kg) | 405 | 380 | 360 | 380 | 360 | 380 | 360 |
Additive (kg) | 0 | 57 | 108 | 57 | 108 | 57 | 108 |
Water (kg) | 193.5 | 182.3 | 171 | 182.3 | 171 | 182.3 | 171 |
Superplasticizer (kg) | 4.43 | 6.23 | 7.71 | 6.34 | 7.83 | 6.49 | 7.81 |
Air-entraining admixture (kg) | 0.123 | 0.123 | 0.134 | 0.175 | 0.309 | 0.188 | 0.33 |
Sand 0–2 (kg) | 690 | 686 | 685 | 686 | 685 | 686 | 685 |
Aggregate 2–8 (kg) | 1080 | 1073 | 1071 | 1073 | 1071 | 1073 | 1071 |
Table 6.
Air void distribution parameters for vibrated air-entrained concrete.
Table 6.
Air void distribution parameters for vibrated air-entrained concrete.
| VC with AE (XF2-XF4 Class) |
---|
| V-REF-AE | V-L1-15-AE | V-L1-30-AE | V-L2-15-AE | V-L2-30-AE | V-L3-15-AE | V-L3-30-AE |
---|
A, % | 4.75 | 4.76 | 4.16 | 4.31 | 4.07 | 5.01 | 4.98 |
a, mm−1 | 35.34 | 37.54 | 29.33 | 28.21 | 30.56 | 29.54 | 28.11 |
L, mm | 0.126 | 0.154 | 0.189 | 0.179 | 0.184 | 0.169 | 0.185 |
A300, % | 1.88 | 1.33 | 1.26 | 1.54 | 1.38 | 1.09 | 1.27 |
Table 7.
Air void distribution parameters for self-compacting air-entrained concrete.
Table 7.
Air void distribution parameters for self-compacting air-entrained concrete.
| SCC with AE (XF2-XF4 Class) |
---|
| SC-REF-AE | SC-L1-15-AE | SC-L1-30-AE | SC-L2-15-AE | SC-L2-30-AE | SC-L3-15-AE | SC-L3-30-AE |
---|
A, % | 4.35 | 4.94 | 4.52 | 4.14 | 5.35 | 4.32 | 4.87 |
a, mm−1 | 31.44 | 29.1 | 29.11 | 28.97 | 29.8 | 29.22 | 29.51 |
L, mm | 0.131 | 0.15 | 0.157 | 0.154 | 0.177 | 0.152 | 0.165 |
A300, % | 1.86 | 1.47 | 1.36 | 1.89 | 1.44 | 1.5 | 1.11 |