Experimental Research on the Compression Property of Geopolymer Concrete with Molybdenum Tailings as a Building Material
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Mix Design and Sample Preparation
2.3. Instrumentation and Measurements
2.3.1. Compressive Strength Test
2.3.2. XRD
2.3.3. SEM/EDS
2.3.4. FTIR
3. Results and Discussion
3.1. Compressive Strength
3.2. XRD Analysis
3.3. SEM/EDS Analysis
3.4. FTIR Analysis
4. Conclusions
- (1)
- The compression property of fly ash-based geopolymers is related to the MoT content. With the increase in MoT substitution rate, the compressive strength of fly ash-based geopolymers showed a decreasing trend under standard curing conditions, while the compressive strength of geopolymers under water curing conditions first increased and then decreased. When the substitution rate of MoT to FA was 10%, the compressive strength of the geopolymer cured in a water bath for 28 days was 90.3 MPa.
- (2)
- MoT can participate in the reaction and change the microstructure and chemical composition of fly ash-based geopolymers. With the increase in the proportion of MoT instead of FA, the mass ratio of Ca/(Si + Al) in the reaction product increases, which affects the development of the mechanical properties of the geopolymer. At the same time, the excessive addition of MoT makes the microstructure of the geopolymer matrix uneven, causing a weak interfacial transition zone between MoT and the gel, resulting in a decrease in strength.
- (3)
- The curing conditions affect the compression property of the fly ash-based geopolymer. The compression property of fly ash-based geopolymers under water curing are better than those under standard curing. Meanwhile, water curing also contributed to the early and final strength development of fly ash-based geopolymers, and this trend was related to the microscopic morphology of gel products and the degree of crosslinking of the gel products. The SEM results show that the microscopic morphology of the specimens under water curing was more compact, and the FTIR results show that water curing can promote more Al to enter the geopolymer gel and improve the crosslinking degree of the gel phase.
- (4)
- MoT substitution rate and curing conditions have synergistic effects on the compression property of fly ash-based geopolymers. The degree of deterioration of the compressive strength of the standard curing specimens has a large correlation with the MoT substitution rate, but the degree to which the compressive strength of the specimens cured in the water bath decreased has little correlation with the increase in the MoT content.
- (5)
- The application of MoT to fly ash-based geopolymers in this study has provided an effective experience and confidence for further utilization of this material as a prefabricated material. However, more mechanical properties of MoT–fly ash-based geopolymers, such as compressive stress-strain curves, flexural strength and anti-splitting ability, still need further research. In addition, its further structural application in larger components will be systematically explored in the future.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Chemical Composition | MoT | FA |
---|---|---|
SiO2 | 41.842 | 38.0 |
Al2O3 | 5.801 | 37.7 |
CaO | 29.9 | 6.35 |
Fe2O3 | 15.172 | 4.97 |
Na2O | - | 0.902 |
MgO | 2.057 | 0.873 |
K2O | 0.822 | 1.06 |
SO3 | 2.363 | 0.970 |
MoO3 | 0.021 | - |
TiO2 | 0.389 | 1.67 |
P2O5 | 0.175 | 0.457 |
WO3 | 0.049 | - |
ZnO | 0.029 | 0.0289 |
Cr2O3 | 0.026 | 0.0153 |
ZrO2 | 0.02 | 0.101 |
V2O5 | 0.009 | 0.0332 |
SrO | 0.007 | 0.236 |
Y2O3 | 0.002 | 0.0110 |
LOI | 1.316 | 6.6226 |
Sample ID | Raw Materials | AAS/Raw Materials Mass Ratio | |
---|---|---|---|
MoT (wt%) | FA (wt%) | ||
MoT-0 | 0 | 100 | 0.3 |
MoT-10 | 10 | 90 | |
MoT-20 | 20 | 80 | |
MoT-30 | 30 | 70 | |
MoT-40 | 40 | 60 |
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Sun, M.; Fu, Y.; Wang, W.; Yang, Y.; Wang, A. Experimental Research on the Compression Property of Geopolymer Concrete with Molybdenum Tailings as a Building Material. Buildings 2022, 12, 1596. https://doi.org/10.3390/buildings12101596
Sun M, Fu Y, Wang W, Yang Y, Wang A. Experimental Research on the Compression Property of Geopolymer Concrete with Molybdenum Tailings as a Building Material. Buildings. 2022; 12(10):1596. https://doi.org/10.3390/buildings12101596
Chicago/Turabian StyleSun, Ming, Yin Fu, Weixin Wang, Youzhi Yang, and An Wang. 2022. "Experimental Research on the Compression Property of Geopolymer Concrete with Molybdenum Tailings as a Building Material" Buildings 12, no. 10: 1596. https://doi.org/10.3390/buildings12101596
APA StyleSun, M., Fu, Y., Wang, W., Yang, Y., & Wang, A. (2022). Experimental Research on the Compression Property of Geopolymer Concrete with Molybdenum Tailings as a Building Material. Buildings, 12(10), 1596. https://doi.org/10.3390/buildings12101596