Mechanical Properties and Microstructure of High-Strength Lightweight Concrete Incorporating Graphene Oxide
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials and properties
2.2. Mix Proportions
2.3. Text Method
2.4. Curing Regimes
3. Results and Discussion
3.1. Workability and Density
3.2. Compressive Strength
3.2.1. Under Full Water Curing
3.2.2. Under Partial Early Curing
3.3. Splitting Tensile Strength
3.4. Flexural Strength
3.5. Modulus of Elasticity
3.6. Microstructure
4. Conclusions
- Although the fluidity of high-strength lightweight concrete (HSLWC) decreased with the increasing addition of graphene oxide (GO), the test showed satisfactory workability. At a low volume of GO addition, the density of the mixture did not increase significantly, and was still in the range of structural lightweight concrete.
- With the addition of GO, the maximum increase in compressive strength, splitting tensile strength, flexural strength and elastic modulus of HSLWC at 28 days was 24%, 17%, 15%, 20%, respectively. The results also indicate that 0.05% is the optimum value of GO content for improving the splitting tensile strength of HSLWC, and keeping in water for 4 days after demolding was recommended as an efficient curing regime.
- Microscopic tests showed that GO not only filled nano-scale pores, but also regulated the formation and growth of flower-like crystals, which might contribute to the further improvement of mechanical properties of HSLWC.
- The optimal amount of GO in different types of HSLWC and the mechanism of mechanical properties’ improvement still need to be investigated by a large number of experiments, and thus still require further research in the future.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Physical Properties | SC | SPC |
---|---|---|
Fineness | 1.93 | 2.96 |
Bulk density (kg/m3) | 835 | 974 |
Apparent density (kg/m3) | 1425 | 1638 |
Water absorption (3 h) (%) | 2.9 | 1.23 |
Water absorption (24 h) (%) | 4.6 | 1.36 |
Grading Sieve size (mm) | Cumulative % by weight passing | |
19.1 | 100.0 | 100.0 |
9.5 | 86.3 | 100.0 |
4.75 | 9.6 | 92.0 |
2.36 | 0.0 | 81.0 |
1.18 | 0.0 | 58.0 |
0.6 | 0.0 | 35.0 |
0.3 | 0.0 | 13.6 |
0.15 | 0.0 | 0.0 |
Physical Parameter | Main Chemical Component (%) | |||||||
---|---|---|---|---|---|---|---|---|
Specific Surface Area (m2/g) | Density (kg/m3) | Single Layer Thickness (nm) | Tensile Strength (GPa) | Purity | Number of Layers | C | O | S |
232 | 1780 | 0.92 | 0.12 | >95 wt.% | 5–10 | 68.44 | 30.92 | 0.63 |
Mix No. | Cement (kg) | Water (kg) | SC (kg) | SPC (kg) | SP (kg) | GO (%) (g) |
---|---|---|---|---|---|---|
G0 | 457 | 160 | 520 | 380 | 9.1 | 0 (0) |
G2 | 457 | 160 | 520 | 380 | 9.1 | 0.02 (91.4) |
G4 | 457 | 160 | 520 | 380 | 9.1 | 0.04 (182.8) |
G5 | 457 | 160 | 520 | 380 | 9.1 | 0.05 (228.5) |
G6 | 457 | 160 | 520 | 380 | 9.1 | 0.06 (274.2) |
G8 | 457 | 160 | 520 | 380 | 9.1 | 0.08 (365.6) |
Curing Code | Description of 28-Day Curing Conditions |
---|---|
The Laboratory and Water Temperature: 23 ± 3 °C | |
AC | Specimens were placed in air for 27 days after 1 day demolding |
3W | Specimens were immersed in water for 2 days after 1 day demolding and then placed in air for 25 days |
5W | Specimens were immersed in water for 4 days after 1 day demolding and then placed in air for 23 days |
7W | Specimens were immersed in water for 6 days after 1 day demolding and then placed in air for 21 days |
FW | Specimens were immersed water for 27 days after 1 day demolding |
Mix No. | Slump (mm) | Density (kg/m3) | |||
---|---|---|---|---|---|
Demolded | Air Dry at 28 Days | Saturated at 28 Days | Oven Dry at 28 Days | ||
G0 | 96 | 1738 | 1727 | 1786 | 1668 |
G2 | 86 | 1744 | 1736 | 1767 | 1702 |
G4 | 78 | 1749 | 1745 | 1764 | 1732 |
G5 | 73 | 1753 | 1751 | 1760 | 1736 |
G6 | 66 | 1754 | 1750 | 1764 | 1742 |
G8 | 58 | 1768 | 1763 | 1777 | 1756 |
Mix No. | 28-Day Compressive Strength under Different Curing Conditions (MPa) | ||||
---|---|---|---|---|---|
FW | AC | 3 W | 5 W | 7 W | |
G0 | 53.64 | 47.77 (89%) 1 | 49.45 (92%) | 52.07 (97%) | 54.82 (102%) |
G2 | 55.71 | 51.44 (92%) | 52.22 (94%) | 56.33 (101%) | 57.42 (103%) |
G4 | 62.46 | 59.50 (95%) | 60.22 (96%) | 64.41 (103%) | 65.87 (105%) |
G5 | 65.16 | 62.51 (96%) | 63.28 (97%) | 67.87 (104%) | 69.36 (106%) |
G6 | 65.52 | 62.68 (96%) | 63.61 (97%) | 68.54 (105%) | 69.64 (106%) |
G8 | 66.36 | 62.84 (95%) | 64.44 (97%) | 68.67 (103%) | 69.78 (105%) |
Mix No. | fcu (MPa) | fr (MPa) | fcu/fr (%) |
---|---|---|---|
G0 | 53.64 | 5.45 | 10.2 |
G2 | 55.71 | 5.78 | 10.4 |
G4 | 62.46 | 6.11 | 9.8 |
G5 | 65.16 | 6.22 | 9.5 |
G6 | 65.52 | 6.24 | 9.5 |
G8 | 66.36 | 6.26 | 9.4 |
Mix No. | G0 | G2 | G4 | G5 | G6 | G8 | |
---|---|---|---|---|---|---|---|
Experimental Results | 19.88 | 22.32 | 23.53 | 23.79 | 23.82 | 23.88 | |
Equation No. | Ref. | G0 | G2 | G4 | G5 | G6 | G8 |
(3) E = 0.0017w2fcu0.33 * | BS 8110 [56] | 18.87 (−5%) | 19.31 (−13%) | 20.40 (−13%) | 20.54 (−14%) | 20.70 (−13%) | 21.10 (−12%) |
(4) E = 0.043w1.5fcy0.5 | ACI 318 [57] | 20.22 (+2%) | 20.76 (−7%) | 22.27 (−5%) | 22.63 (−5%) | 22.79 (−4%) | 23.19 (−3%) |
(5) E = 0.03w1.5fcy0.5 | Hossain et al. [58] | 14.10 (−29%) | 14.49 (−35%) | 15.54 (−34%) | 15.79 (−34%) | 15.90 (−33%) | 16.18 (−32%) |
(6) E = 0.04w1.5fcu0.5 | CEB/FIP [49] | 21.03 (+6%) | 21.60 (−3%) | 23.16 (−2%) | 23.54 (−1%) | 23.70 (0%) | 24.12 (+1%) |
(7) E = (0.062 + 0.0297fcy0.5)w1.5 | Slate et al. [59] | 18.41 (−5%) | 18.83 (−16%) | 19.93 (−15%) | 20.15 (−15%) | 20.28 (−15%) | 20.61 (−14%) |
(8) E = 2.1684fcy0.535 | Tasnimi [60] | 16.20 (−19%) | 16.53 (−26%) | 17.58 (−25%) | 17.98 (−24%) | 18.03 (−24%) | 18.16 (−24%) |
(9) E = 0.0091 (w/2400)1.5 fcu2 | Short [61] | 13.56 (−32%) | 14.78 (−34%) | 18.90 (−20%) | 20.43 (−14%) | 20.77 (−13%) | 21.62 (−9%) |
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Hong, X.; Lee, J.C.; Qian, B. Mechanical Properties and Microstructure of High-Strength Lightweight Concrete Incorporating Graphene Oxide. Nanomaterials 2022, 12, 833. https://doi.org/10.3390/nano12050833
Hong X, Lee JC, Qian B. Mechanical Properties and Microstructure of High-Strength Lightweight Concrete Incorporating Graphene Oxide. Nanomaterials. 2022; 12(5):833. https://doi.org/10.3390/nano12050833
Chicago/Turabian StyleHong, Xiaojiang, Jin Chai Lee, and Bo Qian. 2022. "Mechanical Properties and Microstructure of High-Strength Lightweight Concrete Incorporating Graphene Oxide" Nanomaterials 12, no. 5: 833. https://doi.org/10.3390/nano12050833
APA StyleHong, X., Lee, J. C., & Qian, B. (2022). Mechanical Properties and Microstructure of High-Strength Lightweight Concrete Incorporating Graphene Oxide. Nanomaterials, 12(5), 833. https://doi.org/10.3390/nano12050833