Durability Performance of SCC and SCGC Containing Recycled Concrete Aggregates: A Comparative Study
Abstract
:1. Introduction
2. Experimental Program
2.1. Experimental Design for Self-Compacting Concrete (SCC)
2.2. Experimental Design for Self-Compacting Geopolymer Concrete (SCGC)
Alkaline Activator Solution (AAS)
3. Experimental Tests, Results and Discussion
3.1. Fresh State Properties
3.2. Hardened State Properties
3.2.1. Compression Test
3.2.2. Split Tension Test
3.3. Durability Properties
3.3.1. Hydraulic Permeability
3.3.2. Accelerated Carbonation Test
3.3.3. Salt Spray and Half-Cell Potential Test
3.3.4. Pull-Out Test
4. Conclusions
- The replacement of NCA fraction up to 30% with RCA is satisfactory in terms of rheological properties as SCGC mix can be developed using RCA as it satisfied the requirements of EFNARC [25].
- The use of 30% RCA as partial replacement of NCA reduced the compressive strength as much as 38.3 % in SCC and 33.1% in SCGC, whereas the reduction in split tensile strength was 47.73% in SCC and 55% in SCGC as compared to those mixes which contained 100% NCA.
- SCC is found to be more resistant to penetration of water, carbon dioxide and chloride ions as compared to SCGC. SCC has higher bond strength, compression, and split tensile strength compared to SCGC.
- Using 30% RCA in SCC, the minimum to maximum reduction in water penetration depth, carbonation depth, half-cell potential difference, and pull-out strength was 5.71% to 22.22%, 11.69% to 47.73%, 44.23% to 64.29%, and 12.82% to 45.45%, respectively, as compared to those mixes which contained 100% NCA.
- Using 30% RCA in SCGC, the minimum to maximum reduction in water penetration depth, carbonation depth, half-cell potential difference, and pull-out strength was 15.71% to 20.64%, 10.53% to 47.1%, 28.73% to 34.49%, 22.1% to 43.59%, respectively, as compared to those mixes which contained 100% NCA.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Physical Properties | ||
Presentation | Finely Divided Dry Powder | |
Colour | Light grey | |
Bulk weight | 1.0 ton/m3 | |
Specific density | 2.3 | |
Fineness | <25% retained on 45 micron sieve | |
Particle shape | Spherical | |
Chemical Properties | ||
Calcium oxide (CaO) | 7.8 | ASTM C114 [23] |
Silica (SiO2) | 39.6 | |
Alumina (Al2O3) | 28.33 | |
Iron oxide (Fe2O3) | 8.45 | |
Magnesium oxide (MgO) | 1.81 | |
Sulphur Trioxide (SO3) | 0.47 | |
Chloride (Cl) | 0.031 | |
Alkali Eq. | 0.89 | |
Water-soluble phosphate (P2O5) | 0.52 | |
Manganese oxide (MnO) | 0.38 | |
Phosphorus oxide (P2O5) | 1.16 | |
Potassium oxide (K2O) | 1.68 | |
Sodium oxide (Na2O) | 1.44 | |
Titanium oxide (TiO2) | 1.13 | |
Free CaO | 3.2 | |
Loss on Ignition (LOI) | 3.1 |
Mix Type | Cement (kg) | Fly Ash (kg) | Coarse Aggregate, kg | Fine Aggregate, (kg) | Water (kg) | w/b Ratio | SP Dosage, (kg) | Dose (%) = Dose (kg)/(Cement + FA) (kg) ×100 | |
---|---|---|---|---|---|---|---|---|---|
Normal | Recycled | =Water (kg)/ (Cement + Fly Ash) (kg) | |||||||
SCC-0 | 290 | 155 | 812 | 0 | 957 | 185 | 0.48 | 6.675 | 1.5% |
SCC-30 | 290 | 155 | 568 | 244 | 957 | 185 |
Trial Mixing Code | Fly Ash (kg/m3) | Coarse Agg. (kg/m3) | Fine Agg. (kg/m3) | NaOH (kg/m3) | Na2SiO3 (kg/m3) | SP (kg/m3) | Extra Water (kg/m3) | Curing | ||
---|---|---|---|---|---|---|---|---|---|---|
Natural | Recycled | Duration (hrs). | Temperature (⸰C) | |||||||
SCGC-0 | 400 (FA) | 950 | - | 850 | 52 (8 M) | 143 | 28 (7%) | 60 (15%) | 24 | 70 |
SCGC-30 | 400 (FA) | 665 | 285 | 850 | 52 (8 M) | 143 | 28 (7%) | 80 (20%) | 24 | 70 |
Properties | Test Method(s) | Unit | Allowable Range | |
---|---|---|---|---|
Minimum | Maximum | |||
Flowability | Slump-Flow (SF) Test | mm | 550 | 800 |
Viscosity (a measure of the speed of flow and assessed by the rate of flow), VS or VF | T500 Slump-flow test or V-funnel test | Sec | 2 | 5 |
Passing ability (PA) | L-box test | Sec | 6 | 12 |
Segregation (SR) | Segregation resistance (sieve) test | h2/h1 | 0.8 | 1.0 |
Properties | Test Method(s) | Resulted Value | Unit | Allowable Range | |
---|---|---|---|---|---|
Minimum | Maximum | ||||
Flowability | Slump-Flow (SF) Test | -- | mm | 550 | 800 |
Viscosity (a measure of the speed of flow and assessed by the rate of flow), VS or VF | T500 Slump-flow test or V-funnel test | 2.5 | Sec | 2 | 5 |
Passing ability (PA) | L-box test | 8 | Sec | 6 | 12 |
Segregation (SR) | Segregation resistance (sieve) test | 0.92 | h2/h1 | 0.8 | 1.0 |
Properties | Test Method(s) | Resulted Value | Unit | Allowable Range | |
---|---|---|---|---|---|
Minimum | Maximum | ||||
Flowability | Slump-Flow (SF) Test | -- | mm | 550 | 800 |
Viscosity (a measure of the speed of flow and assessed by the rate of flow), VS or VF | T500 Slump-flow test or V-funnel test | 2.9 | Sec | 2 | 5 |
Passing ability (PA) | L-box test | 8.2 | Sec | 6 | 12 |
Segregation (SR) | Segregation resistance (sieve) test | 0.98 | h2/h1 | 0.8 | 1.0 |
Properties | Test Method(s) | Resulted Value | Unit | Allowable Range | |
---|---|---|---|---|---|
Minimum | Maximum | ||||
Flowability | Slump-Flow (SF) Test | -- | mm | 550 | 800 |
Viscosity (a measure of the speed of flow and assessed by the rate of flow), VS or VF | T500 Slump-flow test or V-funnel test | 2.8 | Sec | 2 | 5 |
Passing ability (PA) | L-box test | 8.2 | Sec | 6 | 12 |
Segregation (SR) | Segregation resistance (sieve) test | 0.76 | h2/h1 | 0.8 | 1.0 |
Properties | Test Method(s) | Resulted Value | Unit | Allowable Range | |
---|---|---|---|---|---|
Minimum | Maximum | ||||
Flowability | Slump-Flow (SF) Test | -- | mm | 550 | 800 |
Viscosity (a measure of the speed of flow and assessed by the rate of flow), VS or VF | T500 Slump-flow test or V-funnel test | 3.3 | Sec | 2 | 5 |
Passing ability (PA) | L-box test | 8.8 | Sec | 6 | 12 |
Segregation (SR) | Segregation resistance (sieve) test | 0.79 | h2/h1 | 0.8 | 1.0 |
Durability Test and Standards | Specimen Details | |
---|---|---|
Specimen Size | No. of Specimens | |
DIN-1048: Hydraulic Permeability [33] | 100 × 100 × 100 mm | 3 |
CEN Test: Carbonation [34] | 100 dia. ×200 mm height | 3 |
ASTM C876: Half-Cell Potential test after exposure in salt spray machine [35] | 100 dia. And 200 mm height specimen where a 100 mm length of 10mm dia. steel bar was embedded inside the specimen and 350mm length was exposed outside, i.e., overall length of steel bar was 450 mm | 3 |
ASTM C900: Pull-Out Test [36] |
Temperature | 20 ± 2 ℃ |
Relative humidity | 65 ± 5% |
CO2 concentration | 350 + 50 ppm |
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Ayub, T.; Mahmood, W.; Khan, A.-u.-R. Durability Performance of SCC and SCGC Containing Recycled Concrete Aggregates: A Comparative Study. Sustainability 2021, 13, 8621. https://doi.org/10.3390/su13158621
Ayub T, Mahmood W, Khan A-u-R. Durability Performance of SCC and SCGC Containing Recycled Concrete Aggregates: A Comparative Study. Sustainability. 2021; 13(15):8621. https://doi.org/10.3390/su13158621
Chicago/Turabian StyleAyub, Tehmina, Wajeeha Mahmood, and Asad-ur-Rehman Khan. 2021. "Durability Performance of SCC and SCGC Containing Recycled Concrete Aggregates: A Comparative Study" Sustainability 13, no. 15: 8621. https://doi.org/10.3390/su13158621
APA StyleAyub, T., Mahmood, W., & Khan, A. -u. -R. (2021). Durability Performance of SCC and SCGC Containing Recycled Concrete Aggregates: A Comparative Study. Sustainability, 13(15), 8621. https://doi.org/10.3390/su13158621