An Investigation of Mechanical Properties of Fly Ash Based Geopolymer and Glass Fibers Concrete
Abstract
:1. Introduction
2. Literature Review
3. Materials and Methodology of Research
- Collection of fly ash material from industrial (thermal power plant class F) used as filler material for concrete
- Collection of glass fibers from industry
- Casting of conventional concrete cubes and concrete cylinders
- Casting of geopolymer concrete with combinations of cement and fly ash as 15% and 85%, respectively
- Use of NaOH or KOH and sodium silicate or potassium silicate as alkaline solution for geopolymerization
- Casting of glass-fiber-“reinforced” concrete cubes and cylinders
- Curing of casted samples of concrete for 7, 14, 21, and, 28 days
- Testing of concrete cubes and cylinders in compressing testing machines
- Comparison of failure modes of all concrete samples with or without geopolymer and glass fibers
4. Experimental Program
4.1. Preparation of Liquids
4.2. Casting of Concrete Cubes and Cylinders
5. Results and Discussion
5.1. Workability
5.2. Mechanical Properties
5.2.1. Compressive Strength
5.2.2. Split Tensile Strength
5.2.3. Failure Pattern of Concrete Cubes and Cylinders
5.3. Statistical Correlation between Different Properties of Concrete Having Geopolymer and Glass Fibers
6. Conclusions and Recommendations
- In this study, workability, compressive strength, and split tensile strength of fly-ash-based geopolymer concrete with alkaline solution and concrete having glass fibers added by weight of cement were investigated.
- The workability of geopolymer concrete was found to be higher than conventional concrete and concrete having glass fibers because of more fluidity and the alkaline solution of sodium silicate and sodium hydroxide. The workability values of glass fiber concrete decreased with an increase in the content of glass fibers due to the reason of an increase in the segregation of concrete and resistance to the flow of concrete [68].
- The compressive strength values decreased with an increase in the content of geopolymer and glass fiber contents in concrete due to the reason of more alkalinity of geopolymer concrete and an increase in the segregation of concrete with an increase in the content of glass fibers. The optimum value of glass fiber content in concrete is found as 2% [68]. As far as the compressive strength of geopolymer concrete, it depends on the nature of curing as oven curing is found suitable for geopolymer concrete as compared to water curing for obtaining better strength [19].
- The split tensile strength values of concrete having geopolymer and glass fibers also decreased with an increase in the amount of geopolymer and glass fiber content in concrete. The optimum value of glass fiber in concrete is 1.5% for the improvement in the flexural strength of concrete [68]. The nature of curing also has a significant effect on the split tensile strength of concrete, and oven curing is preferred over water curing [19].
- Some testing work on concrete samples having fly ash and glass fiber was also conducted at the initial level of testing, and the results showed that two different materials having different effects on the same concrete mix as fly ash content was effective for increasing the workability of the concrete mix, while glass fibers were found to reduce the workability of concrete due to resistance to the flow of concrete, and concrete having glass fibers showed a lack of performance as compared to conventional concrete. From past work, it was found that there was no significant effect of fly ash and glass fibers on the compressive strength of concrete when used in combined form, while 15% FA and 0.17% GF provide good results in terms of the split tensile strength of concrete [74].
- The effect of fly ash from different sources on the compressive strength of geopolymer concrete needs to be explored.
- There is a need to investigate the effect of other hydroxide solutions, such as barium hydroxide, lithium hydroxide, and magnesium hydroxide, in the compressive strength of geopolymer concrete.
- Durability studies of geopolymer concrete need to be investigated in the future.
- Different grades of concrete with different water to cement ratios may also be investigated with geopolymer and glass fiber materials.
- The effects of different admixtures on geopolymer and glass fiber concrete need to be investigated in future research work.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Chemical Properties | Percentage (%) | Physical Properties | Values |
---|---|---|---|
SiO2 | 23.21 | Specific gravity | 3.15 |
Fe2O3 | 3.87 | Consistency | 30% |
CaO | 64.78 | Initial setting time | 42 min |
MgO | 2.76 | Final setting time | 485 min |
SO3 | 2.94 | Soundness | 8 mm |
Na2O | 0.24 | Compressive strength (28 days) | 24.7 MPa |
K2O | 0.78 | Fineness | 91.2% |
Physical Properties | Values |
---|---|
Specific Gravity | 2.90 |
Color | Black |
Fineness | 11.3% |
Physical Properties | Values |
---|---|
Specific Gravity | 2.61 |
Fineness Modulus | 2.72 |
Bulk Density (Loose) | 1560 m2/kg |
Bulk Density (Compacted) | 1682 m2/kg |
Water Absorption | 1% |
Surface Moisture | Nil |
Physical Properties | Values |
---|---|
Specific Gravity | 2.61 |
Fineness Modulus | 6.15 |
Bulk Density (Loose) | 1470 m2/kg |
Bulk Density (Compacted) | 1685 m2/kg |
Water Absorption | 0.5% |
Moisture Content | Nil |
Physical Properties | Result |
---|---|
Density | 2.58 g/cm3 |
Tensile Strength | 3.445 Gpa |
Young’s Modulus | 72.3 Gpa |
Elongation | 4.8% |
Coefficient of Thermal Expansion | 54 × 10−7/°C |
Poisson’s Ratio | 0.2 |
Test Type | Standard Used | Specimen Shape | Age (Days) | No. of Samples | |
---|---|---|---|---|---|
Control | Geopolymer Concrete | ||||
Slump | ASTMC143/C143M [65] | Cone | Immediately after mixing | 3 | 3 |
Compressive Strength | ASTMC39/C39M [66] | Cube and Cylinder | 28 | 6 | 12 |
Split Tensile Strength | ASTMC496/C496M-17 [67] | Cube and Cylinder | 28 | 6 | 12 |
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Abbas, S.N.; Qureshi, M.I.; Abid, M.M.; Zia, A.; Tariq, M.A.U.R. An Investigation of Mechanical Properties of Fly Ash Based Geopolymer and Glass Fibers Concrete. Sustainability 2022, 14, 10489. https://doi.org/10.3390/su141710489
Abbas SN, Qureshi MI, Abid MM, Zia A, Tariq MAUR. An Investigation of Mechanical Properties of Fly Ash Based Geopolymer and Glass Fibers Concrete. Sustainability. 2022; 14(17):10489. https://doi.org/10.3390/su141710489
Chicago/Turabian StyleAbbas, Syed Nasir, Muhammad Irshad Qureshi, Malik Muneeb Abid, Asad Zia, and Muhammad Atiq Ur Rehman Tariq. 2022. "An Investigation of Mechanical Properties of Fly Ash Based Geopolymer and Glass Fibers Concrete" Sustainability 14, no. 17: 10489. https://doi.org/10.3390/su141710489
APA StyleAbbas, S. N., Qureshi, M. I., Abid, M. M., Zia, A., & Tariq, M. A. U. R. (2022). An Investigation of Mechanical Properties of Fly Ash Based Geopolymer and Glass Fibers Concrete. Sustainability, 14(17), 10489. https://doi.org/10.3390/su141710489